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There's an old method I've used a lot to append a "-rollover" to an img to save me a lot of css rules but I've come across an instance where I can't get it to work.

Usually I just give the img a class of rollover and then use this jQuery:

$(".rollover").hover(function() {
    $(this).attr("src", $(this).attr("src").split(".").join("-rollover."));
}, function() {
    $(this).attr("src", $(this).attr("src").split("-rollover.").join("."));
});

However in this case the img is sitting in an element and I want the hover of the element to change the img src.

Here's a sample of the HTML:

<li class="rollover-child grid-item-2">
    <a href="#">
        <img src="img/copy/file.jpg" width="231" height="130" />
        <span class="gl-grid-text">
            <span class="gl-grid-title">Book!</span>
            <span class="gl-grid-sub-text">View upcoming events</span>
            <span class="gl-grid-arrow">&gt;</span>
        </span>
    </a>
</li>

There are also some list items which don't have an anchor but still need the rollover effect, eg

<li class="rollover-child>
    <img src="img/copy/file.jpg" width="231" height="130" />
</li>

The jQuery I was trying was this:

$(".rollover-child").hover(function() {
    $('img', this).attr("src", $(this).attr("src").split(".").join("-rollover."));
}, function() {
    $('img', this).attr("src", $(this).attr("src").split("-rollover.").join("."));
});

but I can't get it to work at all. I've tried variations with find and children and siblings but I must be doing something wrong.

Any help hugely appreciated.

Cheers, Alex

share|improve this question
    
Shouldn't $(this).attr("src").split(".").join("-rollover.") be like $('img', this).attr("src").split(".").join("-rollover.") as this here is still referring to the li tag which doesn't has a src attribute!! –  Vishal Sep 27 '12 at 7:18
    
Vishal I think that using $('img', this) is the same as doing $(this).find(img) –  alexleonard Sep 27 '12 at 7:22
    
Yes right! but when you're setting the src attribute you should refer to the same selector; as you still need to refer to the same img tag. so instead of $(this) you should try $('img', this) –  Vishal Sep 27 '12 at 7:26
    
Ahh, I misunderstood which $(this) you were referring to! Sorry :) –  alexleonard Sep 27 '12 at 7:30

2 Answers 2

up vote 1 down vote accepted

Do like this:

$(".rollover-child").hover(function() {
    $('img', this).attr("src", function(index, currentAttributeValue){
       return currentAttributeValue.split(".").join("-rollover.");
    });
}, function() {
    $('img', this).attr("src", function(index, currentAttributeValue){
       return currentAttributeValue.split("-rollover.").join(".");
    });
});

See .attr( attributeName, function(index, attr) )

share|improve this answer
    
Beautiful! Works a charm! –  alexleonard Sep 27 '12 at 7:24
    
Is there a problem using $('img', this).attr("src", $('img', this).attr("src").split(".").join("-rollover.")); I don't really understand the usage of currentAttributeValue –  alexleonard Sep 27 '12 at 7:34
    
@alexleonard Yes, see my comment under the sushanth reddy's answer. You can test it. Just add 2 different img's inside of the .rollover-child element. And you can see the problem. –  Engineer Sep 27 '12 at 7:34
    
Ahhh, very nice. Thanks for the detailed explanation :) –  alexleonard Sep 28 '12 at 8:13

In this case $(this) corresponds to to <li class="rollover-child> and you are trying to access the $(this).attr("src") which is wrong .. You need to target the image here.

Try this

 $(".rollover-child").hover(function() {
    $('img', this).attr("src", $(this).find('img').attr("src").split(".").join("-rollover."));
}, function() {
    $('img', this).attr("src", $(this).find('img').attr("src").split("-rollover.").join("."));
});  
share|improve this answer
    
If there will be multiple imgs inside of the .rollover-child element, all imgs will have the src value of the first img element. This $(this).find('img').attr("src") is the src of the first img element. –  Engineer Sep 27 '12 at 7:31
    
that does it too, as mentioned by Vishal in the question comments –  alexleonard Sep 27 '12 at 7:32
    
$('img', this).attr("src", $('img', this).attr("src").split(".").join("-rollover.")); would also work then –  alexleonard Sep 27 '12 at 7:32

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