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I've created a method that makes a black bar appear on the side of an image on mouseover. It's all well and good when it's only one image but when applied to multiple images the black bar appears on both images in the event of mouse over.

Is it possible to to get each image to act independently from each other so that the mouseover event only activates the black bar for that particular image?


jsFiddle - http://jsfiddle.net/7kw8z/11/


I call the method via $("img.edit").panzoom();

And This is the method:

!function($){


$.fn.panzoom = function() {
    var $this = $(this);
    this.imagesLoaded(function(){

        $this.wrap('<div class="img_wrapper" />');

        var imgEl = $this.parent(".img_wrapper");

        imgEl.width($this.width());
        imgEl.height($this.height());
        //imgEl.offset({top:$this.offset().top,left:$this.offset().left});

        imgEl.append('<div class="img_menu" />');
        menuEl = imgEl.children(".img_menu");


        imgEl.hover(function() {
            $(menuEl).css("visibility", "visible");
        },  function() {
            $(menuEl).css("visibility", "hidden");
        });

    });
}

}(window.jQuery);
share|improve this question
2  
Use $(this) instead of $(menuEl) in the hover() method? And incidentally menuEl is already a jQuery object, you don't need to rewrap it. –  David Thomas Jun 12 '13 at 14:19
    
In the context of plugins this refers to the jQuery object, so no need to rewrap it either –  cfs Jun 12 '13 at 14:22
    
I know you're asking about jquery, but I accomplished more or less the same thing with pure CSS: jsfiddle.net/paulprogrammer/Xcsrv/2 Your javascript didn't work for me at all (chrome). –  PaulProgrammer Jun 12 '13 at 14:25

3 Answers 3

up vote 4 down vote accepted

you can do

$.fn.panzoom = function() {
return this.each(function(){
    var $this = $(this);
    $this.imagesLoaded(function(){
        $this.wrap('<div class="img_wrapper" />');

        var imgEl = $this.parent(".img_wrapper");

        imgEl.width($this.width());
        imgEl.height($this.height());

        imgEl.append('<div class="img_menu" />');
        var menuEl = imgEl.children(".img_menu");

        imgEl.hover(function() {
            menuEl.css("visibility", "visible");
        },  function() {
            menuEl.css("visibility", "hidden");
        });
    });
});
}     

http://jsfiddle.net/7kw8z/21/

share|improve this answer
    
Ah so this doesn't act as each individual element but an array of elements? Thanks! –  Ryan King Jun 12 '13 at 14:44
    
+1 this is the proper way to make it work. –  Joe Jun 12 '13 at 14:47

The scope of the mouseenter/leave is the current element so you can use $(this). You can than use find, to get element you are trying to show/hide.

    imgEl.hover(function() {
        $(this).find(".img_menu").css("visibility", "visible");
    },  function() {
        $(this).find(".img_menu").css("visibility", "hidden");
    });
share|improve this answer

Not sure why you're doing this all in js, can you use CSS? Just remove

    imgEl.hover(function() {
        $(menuEl).css("visibility", "visible");
    },  function() {
        $(menuEl).css("visibility", "hidden");
    });

and you can add

.img_wrapper:hover .img_menu {
    visibility: visible;
}

http://jsfiddle.net/7kw8z/14/

If you really do need javascript, you need to realize your menuEl is not an element but is a group of element*s*, as denoted by imgEl.children.

share|improve this answer
    
It's a small simplified problem that's a part of a much larger script. I need js, thanks though. –  Ryan King Jun 12 '13 at 14:29

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