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i have this jquery code

else if ($(this).val() === "5") {
        var codefaqs = $(this).val();
        $('#imgloadfaqs').show();
        $("#faqsmain").attr("disabled", "disabled");
        $('#faqsanswer').load('http://royta.org/somefolder/get.php',{codedgive:codefaqs},function(applycode){
            $('#faqsanswer').html(applycode);
            $('#imgloadfaqs').hide(2000);
            $("#faqsmain").removeAttr("disabled");
        });
    }

and show loading image and disable select box
i want when get.php do its work and done to send resault
loading image gone
but with this code its gone very soon before php show resault
can anyone help me with this?

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3 Answers 3

up vote 2 down vote accepted

move hide method inside function where you are getting result from php file as :

...,codedgive:codefaqs},function(applycode){
            $('#faqsanswer').html(applycode);
            $("#faqsmain").removeAttr("disabled");
            $('#imgloadfaqs').hide(500);
        });
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not work ....! actutty i dont need $('#faqsanswer').html(applycode); its load in $('#faqsanswer').load('htt') i remove $('#faqsanswer').html(applycode); this line –  masih arastooyi Jan 12 '13 at 18:32
    
@masiharastooyi : you will need to move hide image logic after code where u are getting result back from server –  ρяσѕρєя K Jan 12 '13 at 18:35
    
$('#faqsanswer').load('....ler/get.php',{codedgive:codefaqs},function(applycode)‌​{ $('#faqsanswer').html(applycode); $('#imgloadfaqs').hide(2000); $("#faqsmain").removeAttr("disabled"); }); but not work its gone very soon yet –  masih arastooyi Jan 12 '13 at 18:40

try putting the code that hides the image inside the done function. I believe this would be the right approach:

$('#faqsanswer').load('http://royta.org/module/faqs/get.php',{codedgive:codefaqs},function(applycode){
        $('#faqsanswer').html(applycode);
        $("#faqsmain").removeAttr("disabled");
        $('#imgloadfaqs').hide(500);
    });
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not work....... –  masih arastooyi Jan 12 '13 at 18:33

Use following code snippet to show and hide.

    $(document).ready(function() {



// Setup the ajax indicator

$('body').append('<div id="ajaxBusy"><p><img src="images/loading.gif"></p></div>');



$('#ajaxBusy').css({

display:"none",

margin:"0px",

paddingLeft:"0px",

paddingRight:"0px",

paddingTop:"0px",

paddingBottom:"0px",

position:"absolute",

right:"3px",

top:"3px",

width:"auto"

});

});



// Ajax activity indicator bound to ajax start/stop document events

$(document).ajaxStart(function(){

$('#ajaxBusy').show();

}).ajaxStop(function(){

$('#ajaxBusy').hide();

});

To read more about the same follow http://skfox.com/2008/04/28/jquery-example-ajax-activity-indicator/

if you use this approach on all ajax request you will get spinning image, so you do not need to code for all request and it will lead to save extra efforts.

For working example follow jsfiddle link http://jsfiddle.net/re57j/

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thanks lets me test it –  masih arastooyi Jan 12 '13 at 18:39
    
not work too...its gone very soon yet –  masih arastooyi Jan 12 '13 at 19:46
    
Look at example link http://jsfiddle.net/re57j/ –  Haresh Ambaliya Jan 13 '13 at 6:09

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