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I am trying to add a mouseup, mousedown, hover event on several different images - the only problem is that the event only occurs on the first image, tried using the each() function does not seem to be working. Any suggestions on how I can do this?

    $(function() {

var filename = $('.imgover').attr('alt');

$('.rolloverimg').each(function(){
   $('#'+ filename).mouseup(function(){
      $(this).children("img").attr('src', 'content/images/buttons/'+ filename + '_up.png' );
    }).mousedown(function(){
      $(this).children("img").attr('src','content/images/buttons/' + filename + '_down.png');
    });

    $('#'+ filename).hover(
      function () {
        $(this).children("img").attr('src', 'content/images/buttons/'+ filename + '_hover.png');
      },
      function () {
        $(this).children("img").attr('src', 'content/images/buttons/' + filename + '_up.png');
      }
    );
});

});

<div class="hdr-btns rolloverimg">
      <a href="#"><img src="content/images/buttons/play_up.png" alt="play" id="play"  class="imgover" /></a>
      <a href="#"><img src="content/images/buttons/register_up.png" alt="register" id="register"  class="imgover" /></a>
</div>
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4 Answers 4

up vote 5 down vote accepted

There is no need to implement a loop in order to add events to multiple elements using jQuery. You can simply apply the events to a selector that selects all the elements that you need.

For example, the following code adds MouseUp and MouseDown events to all the img tags inside an element that has the rolloverimg class:

$('.rolloverimg img').mouseup(function () {
    alert('up')
}).mousedown(function () {
    alert('down');
});

And if you want to quick test it, here is the full working example that was created starting from your source code:

<html>
<head>
    <title></title>
    <script type="text/javascript" src="http://ajax.microsoft.com/ajax/jquery/jquery-1.4.4.min.js"></script>
    <script type="text/javascript">
    $(function () {
        $('.rolloverimg img').mouseup(function () {
            alert('up')
        }).mousedown(function () {
            alert('down');
        });
    });
    </script>
</head>
<body>
    <div class="hdr-btns rolloverimg">
        <a href="#"><img src="content/images/buttons/play_up.png" alt="play" id="play" class="imgover" /></a>
        <a href="#"><img src="content/images/buttons/register_up.png" alt="register" id="register" class="imgover" /></a>
        <input type="button" value="text" />
    </div>
</body>
</html>

Additional info update
If you do not want to select all the img tags from the div, but rather just the ones that have the imgover class applied to them, you can use the following selector:

$(function () {
    $('.rolloverimg img.imgover').mouseup(function () {
        alert('up')
    }).mousedown(function () {
        alert('down');
    });
});

Additional info update2
You can access the currently selected element using $(this). For example:

$('.rolloverimg img.imgover').mouseup(function () {
    alert($(this).attr('id') + '_up')
}).mousedown(function () {
    alert($(this).attr('id') + '_down');
});

Please let me know if the above helps or if you need more specific help.

share|improve this answer
    
Yes but its need to be dynamic as not all images will have the same name. –  NiseNise Dec 10 '10 at 11:38
    
@NiseNise, not sure what you mean. I am not selecting by name, but rather by "tag name". In this case, images are represented using img tags and I am selecting all the img tags inside the element with the rolloverimg class applied to it (the container div in this case). –  Florin Dumitrescu Dec 10 '10 at 11:43
    
Yes, but I need it know the id of that image as using your method all it does is replace the second image with the first on mouseup and mousedown. –  NiseNise Dec 10 '10 at 12:06
    
@NiseNise, I think I understand what you need. I will update my answer. –  Florin Dumitrescu Dec 10 '10 at 12:20
    
Mmm that still does not work... var filename = $('.imgover').attr('src'); $('.rolloverimg img.imgover').mouseup(function () { alert('up: '+ filename) }).mousedown(function () { alert('down:'+ filename); }); –  NiseNise Dec 10 '10 at 12:23

put the code:

var filename = $('.imgover').attr('alt');

inside the each function.

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Yes. It is setting the filename before you are doing the each loop so using the first one it finds throughout your loop. By putting it inside the function you are changing the filename to the current alt attribute. –  Matt Asbury Dec 10 '10 at 11:09

Here is a simple way to do it:

$('.rolloverimg').mouseover(function() {
    $('img', this).each(function () {
        $(this).attr('alt', $(this).attr('id') + '_over');
    })
}).mouseout(function() {
  $('img', this).each(function () {
        $(this).attr('alt', $(this).attr('id') + '_out');
    })
});

Of course, juste replace the attr('alt', 'in') to do what you need (set the src attribute), it is just a simple way to show the logic of selecting the elements.

share|improve this answer

You may just use $('.rolloverimg img').mouseup() etc.

$('.rolloverimg img').mouseup(function(){
      $(this).children("img").attr('src', 'content/images/buttons/'+ filename + '_up.png' );
    }).mousedown(function(){
      $(this).children("img").attr('src','content/images/buttons/' + filename + '_down.png');
    });

$('.rolloverimg img').hover(
      function () {
        $(this).children("img").attr('src', 'content/images/buttons/'+ filename + '_hover.png');
      },
      function () {
        $(this).children("img").attr('src', 'content/images/buttons/' + filename + '_up.png');
      }
    );
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