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How do I get the first "grid_5" class div background image url? (eg: test1.jpg in the following example)

<div>
<div class="grid_5" style="background: url("test1.jpg");">
<div class="grid_5" style="background: url("test2.jpg");">
<div class="grid_5" style="background: url("test3.jpg");">
</div>

I tried the following but it doesnt work:

$('.grid_5:first').attr('background')
$('.grid_5')[0].attr('background')

Please tell me why is that and what should be the correct code for it.

Thanks in advanced.

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attr should be css –  JapanPro Apr 2 '11 at 12:01

4 Answers 4

up vote 2 down vote accepted
$('.grid_5:eq(0)').css('background');
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Why not $('.grid_5')[0].css('background');? –  Mike DeSimone Mar 27 '11 at 4:18
    
just trying to narrow down the selector as much as possible, and i dont need the other n-1 matches. do i have a proof that eq is much faster? unfortunately no, but maybe i should investigate –  moe Mar 27 '11 at 4:23

You want .css('background').

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If you change the style attribute to background-image, it should work just fine, as seen here:

http://jsfiddle.net/KKRTz/

<div>
<div class="grid_5" style="background-image: url('test1.jpg');">
<div class="grid_5" style="background-image: url('test2.jpg');">
<div class="grid_5" style="background-image: url('test3.jpg');">
</div>

$('.grid_5').first().css('background-image');
share|improve this answer

I like this style

 $('.grid_5:first').css('background')
share|improve this answer
    
Thanks for the reply. Using the code above, it returns "url("test1.jpg")" is there a way to make it return "test1.jpg" only? –  Shadow_boi Mar 27 '11 at 4:32
    
sorry i meant .css('background'); –  mcgrailm Mar 27 '11 at 13:20

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