Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a text link. When the user hovers over the text link, I want an image to be displayed elsewhere on the page. I want to do this using css. I thought it could be done simply with a single line of code in the link like an onmouseover but it seems that requires other code elsewhere on the page.

I tried using the a:hover with the picture I want to show as a background-image but I don't think it can be manipulated to display in full instead of being clipped down to the size of the text link.

I see hundreds of results when I try to search for this but none of them are what I want. The closest thing I found was this.

http://www.dynamicdrive.com/style/csslibrary/item/css-image-gallery/

But that's working with hovering over thumbnail images. I just want the user to hover over a single text link to have an image show on the page somewhere else. I found that gallery from this thread: css link pop up image on hover

I don't want to deal with whatever that jquery is or too much scripts because I'm more familiar with css. Does anyone know of a simple way to do this or is there still no way, not even with all the changes made for css3?

Thanks!

share|improve this question

3 Answers 3

up vote 4 down vote accepted

CSS isn't going to be able to call other elements like that, you'll need to use JavaScript to reach beyond a child or sibling selector.

You could try something like this:

<a>Some Link
<div><img src="/you/image" /></div>
</a>

then...

a>div { display: none; }
a:hover>div { display: block; }
share|improve this answer
    
Ah okay I kind of see what you mean with that. That it would be hidden but then displayed when I hover over the link because they're linked with the ">". I'll try and see what happens, thanks! –  user1418023 May 26 '12 at 19:43
    
Awesome, I got it to work! Only change I made was setting the hover div to inline since block made it shift the links next to it after you were done hovering and then in the html part I gave the div a class that I set an absolute position for so the image in the div would show up where I wanted it to on the page. It works exactly how I wanted it to, thank you so much!!! –  user1418023 May 26 '12 at 20:48
    
Oh I also exchanged a>div for a<img same with hover so that I could just use the image without the anchor tag instead of having a div in there. It worked fine the other way in browsers but the links were lined up weird on my mobile device. Now they all match up. Thanks again! –  user1418023 May 27 '12 at 10:48

It can be done using CSS alone. It works perfect on my machine in Firefox, Chrome and Opera browser under Ubuntu 12.04.

CSS :

.hover_img a { position:relative; }
.hover_img a span { position:absolute; display:none; z-index:99; }
.hover_img a:hover span { display:block; }

HTML :

<div class="hover_img">
     <a href="#">Show Image<span><img src="images/01.png" alt="image" height="100" /></span></a>
</div>
share|improve this answer
    
This awesome, and does EXACTLY what I want it to, thank you! But, I'm running into an issue when it's inside of a table, it won't show the full size of the image because the size of the <td> which is undefined, but I'm assuming is smaller, because of the link that corresponds to the image. Do you have any way around this? Is there a way for the image to "float" essentially above the table, and not necessarily be inside of the table? –  Spartacus38 Aug 12 at 17:10

It is not possible to do this with just CSS alone, you will need to use Javascript.

<img src="default_image.jpg" id="image" width="100" height="100" alt="" />


<a href="page.html" onmouseover="document.images['image'].src='mouseover.jpg';" onmouseout="document.images['image'].src='default_image.jpg';"/>Text</a>
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.