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Fact:

<div class="item">
</div>

<div class="item">
</div>

<div class="item">
</div>

<div class="item">
</div>

$(".item").eq(1).css("background-color","red");
$(".item").eq(2).css("background-color","red");

I want to do something like, the item who has color "red" will be black when I mouseover it but other item will remain unchanged.

$(".item).mouseover(function(){
   var cur_css = $(this).css("background-color");
   ???? //Now what?
});

Please Help?

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please clarify your question. What you need? –  Tarsis Azevedo Nov 17 '11 at 3:55
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2 Answers 2

A better solution is to separate css styles from javaScript code. You simply add or remove classname on one element, and the style remains in stylesheet.

The solution is here

You CSS

.red {
    background-color:red;
}

.black {
    background-color:black;
}

You JS:

$(".item").eq(1).addClass('red');
$(".item").eq(2).addClass('red');

$(".item").mouseover(function() {
    $(this)
        .parent()
            .find('.red')
            .removeClass('red')
            .addClass('black');
}).mouseout(function() {
    $(this)
        .parent()
            .find('.black')
            .removeClass('black')
            .addClass('red');
});
share|improve this answer
    
you program is very fine. but there is some problem in my case. I can not addClass due to the css color is dynamic. –  Iqbal Nov 17 '11 at 8:12
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change this

$(".item").eq(1).css("background-color","red").data('color', 'red');
$(".item").eq(2).css("background-color","red").data('color', 'red');

then

$(".item).mouseover(function(){
   $(".item).each(function(){
       if ($(this).data('color') == 'red'){
           $(this).css("background-color", "black").data('color', 'black');
       }
   })
});

modify it according to your need.

share|improve this answer
    
Sorry dear, I want to change all the same item at once. but you code will change only one item at a time –  Iqbal Nov 17 '11 at 3:46
    
I've edited my answer to change color for all matching elements. –  sally Nov 17 '11 at 4:20
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