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Can someone help me with this simple code.. I'm still a noob on js and I don't know what im doing wrong. Basically Im trying to make a mouseover menu.

function showQuickLinks() {
//show the menu
}
function hideQuickLinks() {
//hides the menu
}

//button mouseover
$("#quick-links-dd").mouseover(function() { 
 showQuickLinks();
});

var mnuTimeout;

//clears timeout when it rolls over the button
$("#quick-links-dd").mouseover(function () {        
   clearTimeout(mnuTimeout);    
})

//$("#quick-links) - quick links container
//hides the menu when the mouse is not over the container
$("#quick-links").mouseout(function () {
  mnuTimeout = setTimeout("hideQuickLinks()",1000);
});

The mouse over works but it doesn't execute the code when the mouse is outside the link container.

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1  
First of all, don't pass a string to setTimeout. Yes it's legal but is considered bad practice by most. Instead pass a function reference: setTimeout(hideQuickLinks,1000). Treat the first argument of setTimeout exactly the same way you're treating the first argument to jquery's mouseover and mouseout methods. –  slebetman Sep 16 '10 at 18:00
    
Thanks.. it works –  Nzo Sep 16 '10 at 18:26

3 Answers 3

up vote 0 down vote accepted
var mnuTimeout = null;

$(function() { 
   $("#quick-links-dd").hover() {
       clearTimeout(mnuTimeout);
       showQuickLinks();
   }, function() {  
      mnuTimeout = setTimeout(hideQuickLinks,1000);
   });
});
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Are you missing a " ?

("#quick-links").mouseout(function () {
  mnuTimeout = setTimeout("hideQuickLinks()",1000);
});
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I've had intermittent issues with lost onmouseout events. My eventual solution was to add mouseover events to surrounding elements, and have them also cancel the popup.

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