Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

This should be quite simple to do in JQuery. I can get it to partially work but not fully.

All I need to have is an image in a <div> with another image that covers the bottom section partially. When I mouse over the image or the image partially covering it, the partially covering image slides up to completely cover the first image and that top image is a link to another page etc. When I mouse out the slide is reversed back to it's original position.

Any ideas on this, I was thinking of using the slide() and toggle() methods maybe?

Thanks

Jamie

share|improve this question
    
What have you got working so far? In what way is it not working? Could you paste your code in? – Paul D. Waite Mar 9 '10 at 21:58

you can use hover() for this

$(object).hover(
   function()
   {
      $(this).slideUp();
   },
   function()
   {
      $(this).slideDown();
   }
);
share|improve this answer
    
Although slideDown() completely hides the element, whereas the image should stay semi-visible. – Paul D. Waite Mar 9 '10 at 21:56

I created an example on jsbin.com that might help you out. You can view the source to see how it works or you can click the link in the top right to edit the source.

http://jsbin.com/ibero4/3

share|improve this answer
    
Awesome picture. Is that a Segway brochure in his pocket, or is he just pleased to see me? – Paul D. Waite Mar 9 '10 at 21:59

I believe toggle() binds functions to click events, not mouseover events, so you wouldn’t want that.

slide() in jQueryUI sounds like it’d fit the bill, but you could just use animate in jQuery core (jQueryUI is quite a hefty additional download).

share|improve this answer

Thanks for all the help guys. I finally used the following code adapted from a tutorial on nettuts.com:

 HTML:

    <li><span><img src="<1st.jpg" alt="about us" /></span><a href="about-us"><img src="1st.gif" class="move" alt="about us" /></a></li>
<li><span><img src="<2nd.jpg" alt="about us" /></span><a href="about-us"><img src="2nd.gif" class="move" alt="about us" /></a></li>
<li><span><img src="<3rd.jpg" alt="about us" /></span><a href="about-us"><img src="3rd.gif" class="move" alt="about us" /></a></li>
<li><span><img src="<4th.jpg" alt="about us" /></span><a href="about-us"><img src="4th.gif" class="move" alt="about us" /></a></li>

   CSS:

ul#slidenav {
    margin: 0;
    padding: 0;
    list-style: none;
    float: left;
    font-size: 1.1em;
}
ul#slidenav li{
    margin: 0;
    padding: 0;
    overflow: hidden;  /*--Important - Masking out the hover state by default--*/
    float: left;
    height:190px;

    display:inline-block;
}



#slidenav-container {
    margin-top: 40px;
}



ul#slidenav a, ul#slidenav span { 
    padding: 0px;
    float: left;
    text-decoration: none;
    clear: both;
    width: 100%;
    height: 131px;
    background-color:transparent;


}

jQuery:




    jQuery("#slidenav li").hover(function() {   //On hover...
                    jQuery(this).find(".move").stop().animate({
                        marginTop: "-131" //Find the <img> tag and move it up 131 pixels
                    }, 250);
                } , function() { //On hover out...
                    jQuery(this).find(".move").stop().animate({
                        marginTop: "0"  //Move the <img> back to its original state (0px)
                    }, 250);
                });
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.