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The jQuery:

$(document).ready( function() {
    $("#links .button").click(function() {
        var id = $(this).attr("id") + "-fade";
        $("#sliding-blocks").fadeOut(100);
        $("#" + id).fadeIn(300);
    });
});

And the simplified HTML:

<table id="links">
    <tr>
        <td>
            <div id="projects" class="button">
                Projects
            </div>
        </td>
    </tr>
</table>

<table id="sliding-blocks">
    <tr>
        <td>
            <span id="projects-fade" class="block">
                <img class="icon" src="github.png" height="20" width="20" />
            </span>
        </td>
    </tr>
</table>

The non-simplified HTML contains more entries in #links and #sliding-blocks, but all following the same "fade" naming convention.

For some reason, I can't get anything to work (not even something I can work from). And yes, I've loaded jQuery.

Solution:

$(document).ready( function() {
    var blocks = ["projects-fade", "blog-fade", "online-fade", "resume-fade"];
    $("#links .button").click(function() {
        var id = this.id + "-fade";
        $("#sliding-blocks").fadeOut(100,function() {
            $.each(blocks, function() {
                $("#" + this).hide();
            });
            $("#" + id).show();
            $(this).fadeIn(300);
        });
    });
});
share|improve this question
    
you are fading out the table which contains the element that you want to display –  frictionlesspulley Feb 11 '12 at 18:00

3 Answers 3

up vote 2 down vote accepted

Because you've faded out an ancestor of the element you're trying to fade in.

When the ancestor is faded out, none of its descendants will be visible.

I assume you're looking for something like this...

$(document).ready( function() {
    $("#links .button").click(function() {
        var id = this.id + "-fade";
        $("#sliding-blocks").fadeOut(100,function() {
            $("#" + id).show();
            $(this).fadeIn(300);
        });
    });
});
share|improve this answer
    
Thanks for this. I added a small function to your implementation (see my question if you're interested). –  maxmackie Feb 11 '12 at 18:13
    
@MaxMackie: That looks good, although if you want to hide the others, you could also select them by class $(".block").hide(), eliminating the need for the Array and the $.each. –  squint Feb 11 '12 at 18:23
    
Right! I forgot about that. Thanks again. –  maxmackie Feb 11 '12 at 19:28

Your fade out the #sliding-blocks table, and fade in one element of it, but the table itself is still faded out. You should instead fade out all .block elements, then fade in the one you want, leaving the table visible all the time.

share|improve this answer
    
I'd assume the .block elements have display:block, otherwise they wont fade. –  Vigrond Feb 11 '12 at 18:14

you're hiding sliding-blocks and then your're trying to fade a child element of it in. that won't work as the parent container sliding-blocks is invisible

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