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I want #load to show (while hiding #body) then hide #load, and make #body visible with a fadein. Thats what I ultimately want. I don't think the ajaxstart and stop is the way to do. It is just a splash screen.

basically hide #body on page load, show #load for a few seconds, then hide it, then show #body again. How come nobody can figure this out!

jsfiddle.net/peTSQ

var body = $( '#body' );

$( body ).hide();
$( this ).show().delay( 3000 ).hide( 0, function () {
   $( body ).show(); 
});
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1  
The best way of doing this sort of thing is using the "success" parameter on the $.ajax function. You can then stop the "loading" stuff when the ajax request gets an answer. I think your mis-intepreting ajaxStart and ajaxStop –  Abe Petrillo Sep 19 '11 at 23:31
    
what does the AJAX call on #load do exactly. Maybe it is swapping out the content before the show fires? –  JohnFx Sep 19 '11 at 23:34
1  
'none' - good name for a class :P –  Šime Vidas Sep 19 '11 at 23:37
    
Sorry, I accidentally overwrote your question. I'm trying to roll-back, but I can't figure out how... –  Šime Vidas Sep 20 '11 at 1:36
    
@Sime, fixed. Ill forgive you if you help me! –  JD Audi Sep 20 '11 at 1:38

3 Answers 3

This?

var body = $( '#body' );

$( body ).hide();
$( this ).show().delay( 3000 ).hide( 0, function () {
   $( body ).show(); 
});
share|improve this answer
    
+1 But please explain why :) –  Felix Kling Sep 19 '11 at 23:32
    
@Felix Sure.... –  Šime Vidas Sep 19 '11 at 23:34
    
This doesn't work? –  JD Audi Sep 20 '11 at 0:38
    
@JDAudi It doesn't? –  Šime Vidas Sep 20 '11 at 1:04
    
@ŠimeVidas nope. I want #load to show (while hiding #body) then hide #load, and make #body visible with a fadein. Thats what I ultimately want. I don't think the ajaxstart and stop is the way to do. It is just a splash screen. –  JD Audi Sep 20 '11 at 1:11

Depending on when you want to have your delay, you may or may not be close. In addition, you can utilize a simple setTimeout() function to display your desired item for only a certain amount of time as well.

The following will show it for 600 ms and then hide the item:

$("#load").show().delay(600).hide();

Per the jQuery documentation, the purpose of the delay() function:

Set a timer to delay execution of subsequent items in the queue.

As a result, you may just want to use setTimeout since you are not separating any events, but are instead just creating a delay:

setTimeout(function(){ $("#load").show(); }, 600);
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How would I incorporate that into my script as it is? –  JD Audi Sep 20 '11 at 0:06

Updated:

$("#load").fadeOut("slow", function() { $("body").fadeIn('slow'); });
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How would I incorporate that into my script as it is? –  JD Audi Sep 20 '11 at 0:06
    
I haven't tested this, but it should work. Are you just trying to create an overlay when during ajax calls? –  Russell Shingleton Sep 20 '11 at 0:12
    
You might check this plugin out, I use this in several of my projects: jquery.malsup.com/block –  Russell Shingleton Sep 20 '11 at 0:14
    
I just want to show the #load for a few seconds then show #body –  JD Audi Sep 20 '11 at 0:14
    
I would suggest keeping it simple as shown above at first, then trying to add more functionality. You might just leverage an existing plugin as the one I suggest earlier (jquery.malsup.com/block) which gives specific examples on how to make this work. –  Russell Shingleton Sep 20 '11 at 0:20

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