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I have this Jquery code:

$(document).ready(function() {

    // Do menu mouseovers
    $('.bar a').each(function() {

        var Link = $(this);
        var LinkID = Link.attr("ID");

        $('.menu-pop').each(function() {
            var PopID = $(this).attr("data-for");

            // We have found a match, assign events
            if (PopID == LinkID) {

                Link.mouseover = (function() {
                    alert("trucks lol");
                });

                return;
            }
        });

    });

});

It's for a popup menu I'm writing. The simplified structure of the menu is:

<div class="bar">
    <a class="item">Home</a>
    <a class="item" id="mnuAnother">Another Link</a>
</div>

<div class="menu-pop" data-for="mnuAnother">
    Links and stuff
</div>

I'm expecting it to do the alert when my mouse goes over the "Another" link, but at present it throws no errors/no alert.

Any help appreciated.

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3 Answers 3

up vote 4 down vote accepted

Did you try

Link.mouseover(function() {
  alert("trucks lol");
});

(using jQuery's mouseover function which is a shortcut for binding the mouseover event)

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You need Link instead of link. –  thirtydot Jun 3 '11 at 14:52
    
@thirtydot thanks. typo fixed. –  NickAldwin Jun 3 '11 at 14:53

I would replace the

// ...
$('.bar a').each(function() {
    var Link = $(this);
// ...

by something line

// ...
$('.bar a').each(function(item) {
    var Link = $(item);
// ...
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1  
That's valid jQuery, though ("The value can also be accessed through the this keyword" api.jquery.com/jQuery.each ), so through it probably isn't the cause of his problem. –  NickAldwin Jun 3 '11 at 14:50

See: http://jsfiddle.net/rQ72v/

Change this:

Link.mouseover = (function() {
    alert("trucks lol");
});

to this:

Link.mouseover(function() {
    alert("trucks lol");
});

Link.mouseover = doesn't really make any sense.

Perhaps Link.onmouseover = would work (or would you need Link[0].onmouseover =?) in terms of raw JavaScript.

But, it's much better to use jQuery's .mouseover().

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