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How do I unbind "hover" in jQuery?

This does not work:

$(this).unbind('hover');
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2  
Are you trying to unbind a function that you assigned to the hover event, or are you trying to modify an <a></a> hover? –  Justin Niessner Apr 30 '09 at 2:35
    
To clarify Justin Niessner's question, are you trying to remove Javascript/DOM events, or CSS declarations? The latter is a more complicated matter. –  eyelidlessness May 1 '09 at 5:29

7 Answers 7

up vote 115 down vote accepted

$(this).unbind('mouseenter').unbind('mouseleave')

or more succinctly (thanks @Chad Grant):

$(this).unbind('mouseenter mouseleave')

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23  
or $(this).unbind('mouseenter mouseleave') –  Chad Grant Apr 30 '09 at 8:39
    
is it necessary sequence for mouseenter then after mouseleave? –  sanghavi7 Oct 5 '12 at 10:02

Actually, the jQuery documentation has a more simple approach than the chained examples shown above (although they'll work just fine):

$("#myElement").unbind('mouseenter mouseleave');

As of jQuery 1.7, you are also able use $.on() and $.off() for event binding, so to unbind the hover event, you would use the simpler and tidier:

$('#myElement').off('hover');

The pseudo-event-name "hover" is used as a shorthand for "mouseenter mouseleave" but was handled differently in earlier jQuery versions; requiring you to expressly remove each of the literal event names. Using $.off() now allows you to drop both mouse events using the same shorthand.

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1  
I have jQuery 1.10.2 and the $.off("hover") does not work. However, using both events works great. –  Alexis Wilke Jan 12 at 6:26

Unbind the mouseenter and mouseleave events individually or unbind all events on the element(s).

$(this).unbind('mouseenter').unbind('mouseleave');

or

$(this).unbind();  // assuming you have no other handlers you want to keep
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Another solution is .die() for events who that attached with .live().

Ex.:

// attach click event for <a> tags
$('a').live('click', function(){});

// deattach click event from <a> tags
$('a').die('click');

You can find a good refference here: Exploring jQuery .live() and .die()

( Sorry for my english :"> )

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All hover is doing behind the scenes is binding to the mouseover and mouseout property. I would bind and unbind your functions from those events individually.

For example, say you have the following html:

<a href="#" class="myLink">Link</a>

then your jQuery would be:

$(document).ready(function() {

  function mouseOver()
  {
    $(this).css('color', 'red');
  }
  function mouseOut()
  {
    $(this).css('color', 'blue');
  }

  // either of these might work
  $('.myLink').hover(mouseOver, mouseOut); 
  $('.myLink').mouseover(mouseOver).mouseout(mouseOut); 
  // otherwise use this
  $('.myLink').bind('mouseover', mouseOver).bind('mouseout', mouseOut);


  // then to unbind
  $('.myLink').click(function(e) {
    e.preventDefault();
    $('.myLink').unbind('mouseover', mouseOver).unbind('mouseout', mouseOut);
  });

});
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Correction, After looking at the jquery src hover is actually binding to mouseenter/mouseleave. You should do the same. –  bendewey Apr 30 '09 at 2:50

unbind() doesn't work with hardcoded inline events.

So, for example, if you want to unbind the mouseover event from <div id="some_div" onmouseover="do_something();">, I found that $('#some_div').attr('onmouseover','') is a quick and dirty way to achieve it.

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I found this works as second argument (function) to .hover()

$('#yourId').hover(
	function(){
		// Your code goes here
	},
	function(){
		$(this).unbind()
	}
});

The first function (argument to .hover()) is mouseover and will execute your code. The second argument is mouseout which will unbind the hover event from #yourId. Your code will be executed only once.

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Wouldn't the $.unbind() by itself like this remove all events from that object? In which case things like your $.click() events would now fail, right? –  Alexis Wilke Jan 12 at 6:28

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