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I've been trying to make a colored table with even rows a different color than the odd ones. The only problem I have is that I have to be able to do it even with hidden rows, because if for instance you hide row 2 then you see row 1 and row 3 the same color.

Here's what I have:

tr:not([display="none"]):nth-child(even){
    background: #EFEFFF;
}
tr:not([display="none"]):nth-child(odd){
    background: #E0E0FF;
}

This code doesn't work for me since browsers don't filter :not and :nth-child according to the given order. Any suggestions?

share|improve this question
1  
You're trying to use an element attribute selector to select hidden elements, but display is a CSS property. – Matt Ball Aug 14 '11 at 4:03
    
Aaahh so that was the problem. Thank you all any way ;). I'll try the given "class solution". – Gonzalo Aug 14 '11 at 16:02

Could you add a class to the visible rows so you could write it as:

tr.visible:nth-child(even) {
    background: #EFEFFF;
}
tr.visible:nth-child(odd){
    background: #E0E0FF;
}

Then use jquery to add/remove the class as you make rows visible/invisible?

share|improve this answer
    
+1 beat me to the punch ;) – yuval Aug 14 '11 at 3:56
    
That's a pretty cool trick. I didn't realize that nth-child worked on the selected set - the CSS3 spec makes it sound like odd or even is calculated based on the tree. – OverZealous Aug 14 '11 at 4:12
1  
haha I thought someone would come up with that solution. I just wanted to know if there's a solution that doesn't look like a workaround (no offense). – Gonzalo Aug 14 '11 at 4:13
7  
@OverZealous Your expample doesn't work because as seen in the w3 site, 'nth-child' applies for the group of sibling elements, not the group of matched elements by the selector. I think the only solution is colouring the elements manually inside the javascript code. – Gonzalo Aug 16 '11 at 14:42
3  
@Gonzalo is right, your solution doesn't work. Try to change the class of the first list item from '.visible' to '.hidden' in the jsfiddle link above (row 2 and 4 have the same color though you would expect them to differ according to your logic). :nth-child doesn't even take into account tag names, you can look at it as tag type [any]. :nth-of-type fixes this for tag names. The new (yet unimplemented) :nth-match(an+b of selector-list) fixes the issue for all selectors in general and so could be applied to your workaround with .visible class. – dave Sep 14 '12 at 13:11

Ended up here while trying to tackle a similar problem. Used the following JS to update the CSS based on an added class after filtering.

$('tr.visible').filter(':odd').css('background-color', '#EFEFFF');
$('tr.visible').filter(':even').css('background-color', '#E0E0FF');

Note the flipped colors due to zero indexed arrays.

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