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I have this jQuery:

$(document).ready(function()
{
   $("#panel").hide();

   $('.login').toggle(
   function()
   {
      $('#panel').animate({
      height: "150", 
      padding:"20px 0",
      backgroundColor:'#000000',
      opacity:.8
}, 500);
   },
   function()
   {
      $('#panel').animate({
      height: "0", 
      padding:"0px 0",
      opacity:.2
      }, 500);
   });
});

This is working fine, but I need to extend the functionality a little. I want to also similarly manipulate another div's properties in sync with the #panel div. I tried adding two more functions relating to the secondary div, but I just got a 4-phase toggle...haha! Forgive my ignorance!

Thanks guys!

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Why can't you add the code to manipulate this second DIV inside the first two functions? Am I missing something? –  Paolo Bergantino May 31 '09 at 2:30
    
No, I was missing it! I'm a jscript noob. –  Kevin Brown May 31 '09 at 2:46

3 Answers 3

up vote 38 down vote accepted
$('.login').toggle(
    function(){
        $('#panel').animate({
            height: "150", 
            padding:"20px 0",
            backgroundColor:'#000000',
            opacity:.8
        }, 500);
        $('#otherdiv').animate({
            //otherdiv properties here
        }, 500);
    },
    function(){
        $('#panel').animate({
            height: "0", 
            padding:"0px 0",
            opacity:.2
        }, 500);     
        $('#otherdiv').animate({
            //otherdiv properties here
        }, 500);
});
share|improve this answer
    
Ahh...I can't believe I missed that! Thanks a lot! –  Kevin Brown May 31 '09 at 2:45

I dont think adding dual functions inside the toggle function works for a registered click event (unless im missing something)

For example:

$('.btnName').click(function() {
 top.$('#panel').toggle(function() {
   $(this).animate({ 
     // style change
   }, 500);
   },
   function() {
   $(this).animate({ 
     // style change back
   }, 500);
 });
share|improve this answer
    
so, what are you trying to say ? i dont think it is helpful to give code that dosent work and say "Oh, it dosent work". post a real solution. –  Dementic Feb 14 '13 at 10:26
    
I think it is helpful to give code that dosent work and say "Oh, it dosent work". –  Jahandideh AR Dec 21 '13 at 9:17
onmouseover="$('.play-detail').stop().animate({'height': '84px'},'300');" 

onmouseout="$('.play-detail').stop().animate({'height': '44px'},'300');"

Just put two stops -- one onmouseover and one onmouseout.

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1  
Using inline JavaScript is not a good pattern. If you are already using jQuery use event handlers instead. –  akluth Oct 26 '12 at 8:11

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