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I have several links with class "myanchor". I want to display a div for each link (onmouseover) and hide (onmouseout):

"link1" displays "div1" "link2" displays "div2" . . .

My code which isn't working:

$(document).ready(function () {
        var n = $(".myanchor").length;
        var arr = [];
        for (var i = 1; i <= n; i++) {
            arr[i] = i;
        };

        jQuery.each(arr, function () {
            $("#anchor" + this, "#div" + this).mouseover(function () {
                $("#div" + this).show();
            }).mouseout(function () {
                $("#div" + this).hide();
            });
        });
    });

Thanks.

share|improve this question
up vote 4 down vote accepted

Something like this should do the trick. I'm assuming the link names are stored in the id attribute on the links:

$(".myanchor").hover(function() {
    var id = $(this).attr("id");
    $("#div" + id.charAt(id.length - 1)).show();
}, function() {
    var id = $(this).attr("id");
    $("#div" + id.charAt(id.length - 1)).hide();
});

Here's a working example. This does away with the need for the each loop, because jQuery methods tend to be applied to all elements in the matched set (in this case, that's all the .myanchor elements). Using hover is just a little bit shorter than binding to mouseover and mouseout separately, but the end result is the same.

share|improve this answer
    
Thanks, it a clean code, but I also want that when I hover over the div it stays visible, and when I hover off the div it is hidden – vobs Oct 27 '11 at 12:08

this should work:

$(document).ready(function () {
            $(".myanchor").each(function(i){
              $(this).mouseover(function () {
                    $("#div" + i).show();
                }).mouseout(function () {
                    $("#div" + i).hide();
                });
            });
        });
share|improve this answer

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