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Demo: http://jsfiddle.net/sunnycpp/fMXyP/5/

Consecutive show,hide calls produces a bug, Animation stops and does not resume sometimes. Is this jQuery bug or bug in my code?

Here is the code copy-pasted from jsfiddle.

myButtonManual.on("click", function() {
  isVisible = !isVisible;      
  myHero.stop(true,false);      
  if(isVisible) {        
    myHero.show('slow');
    myButtonManual.text("Manual Hide");
  } else {        
    myHero.hide('slow');
    myButtonManual.text("Manual Show");
  }   

enter image description here

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1  
So why not use toggle? –  Oritm Jan 18 '13 at 13:42
    
In actual usecase, Show and hide are two different API calls, not possible to convert them to toggle. –  SunnyShah Jan 18 '13 at 14:03

1 Answer 1

up vote 2 down vote accepted

That isn't a bug.

Taking a look at this line:

myHero.stop(true,false);

When you stop a .hide() at the middle of it without jumping to the end of animation, an element that is visible will stay visible.

Your logic isVisible = !isVisible will be broken then as .stop()ing a hide() leaves the element still visible, meaning that the next call to the handler will execute .show() on a visible element that will have absolutely no effect.

Workarounds include:

  • Remove the .stop(), this will queue the show() and execute it after the hide() concludes;

  • Use .stop(true) - equivalent to .stop(true, true) -, this will be rather bluntly as it will force the animation to conclude as it suddenly starts the next;

Edit: The closest way to reproduce a .toggle()-like behavior using the .show() and .hide() methods is to simply add a .css('display', 'none') before calling .show(), this will ensure that .show() has the desired effect:

isVisible = !isVisible;
myHero.stop(true, false);
if (isVisible) {
  myHero.css('display', 'none').show('slow');
} else {
  myHero.hide('slow');
}

Fiddle

If the element is already hidden, the .css will have no effect; if the element is partially shown, it will hide it ensuring that .show() executes instead of being ignored due to the element being considered visible.

This has the same effect as the .stop(true, false).toggle(), but works using the 2 different .show()/.hide() methods as requested.

share|improve this answer
    
Can you please suggest a solution? –  SunnyShah Jan 18 '13 at 14:02
    
Yes I'm looking for an appropriate one. Removing the .stop() line will behave as the automatic toggle; using stop(true) will work as well but is rather bluntly. –  Fabrício Matté Jan 18 '13 at 14:03
    
I'm not satisfied with this explanation really. The functionality is OK if you just wait for the animation to complete. Therefore I believe there is something to do with the timely dispatching of the click events. –  CyberDude Jan 18 '13 at 14:03
1  
@CyberDude Mind you re-read my answer? .stop(true, false) stops the animation at the mid of it without completing the animation, which leaves a .hide() incomplete meaning the element is still visible. Then when you call .show() on it due to OP assuming that each click toggles the visibility: isVisible = !isVisible, the .show() function has absolutely no effect as the element is already visible. Sorry, but I can't put it in any simpler terms. –  Fabrício Matté Jan 18 '13 at 14:05
1  
@FabrícioMatté, Excellent! –  SunnyShah Jan 18 '13 at 15:37

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