4

Say a element has value 55:

<span id="some">55</span>

I want to:

  1. fade out the element
  2. set value 44
  3. fade in the element

So I tried:

$("#some").fadeOut("slow").html("44").fadeIn("slow");

But the above first sets the span's content to 44, and then fades out and fades in.

So I tried with a callback:

function fadeOutComplete(){
  $("#some").html("<%= @cc %>").fadeIn("slow");
}
$("#some").fadeOut("slow",fadeOutComplete);

Now this works, but it's looks and feels clunky. Is there some way to write this DRYer and more jQuery-er? (not even sure what I mean by jQuery-er!)

How could I pass in the element whose value is to be set and the value to be set to fadeOutComplete so I can make that callback sort-of generic?

  • I don't know, but would also like to know how do you accomplish passing a value to a callback, something like '$("#some").fadeOut("slow",fadeOutComplete(44));'. Can use a global variable that gets set by the caller and read by the callback, but that's like 1980's programming style. – bloodcell Apr 24 '11 at 5:54
  • and here's how that's done - JQuery pass more parameters into callback – bloodcell Apr 24 '11 at 6:07
12

Check this...

$("#some").fadeOut("slow", function() {
   $(this).html("<%= @cc %>").fadeIn("slow");
});
  • You can pass an anonymous function, to prevent registering a named function that will no doubt only be used once.
  • Inside the callback of the complete for fadeOut(), this is pointing to the native DOM element. This allows you to reference it again in a DRY way.
5

Same approach but with some cleanliness:

$('#some').fadeOut('slow',function(){
     $(this).html('somehtml').fadeIn('slow');
});
0

This is a problem with the fade command. The command runs asyncronous, meaning while it is fading out the text is being changed. Look at this question for an answer: jQuery synchronous operation

  • The callback has access to its parent's scope. – alex Apr 24 '11 at 5:51
  • I was thinking about jquery's ajax callbacks, My bad. – Ben Apr 24 '11 at 5:54
0

try like this:

$('#some').fadeOut('slow',function(){
$('#some').html('somehtml');
$('#some').fadeIn('slow');
});
  • 1
    Repeating the same selector 3 times isn't very DRY. – alex Apr 24 '11 at 5:49

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