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I am currently using this code to add a class to every other row in my table.

$(".stripeMe tr:even").addClass("alt");

However, on another table I'd like to add a class to rows 3,4, 7,8, 11,12 and so on...

Is this possible?

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pls provide a snippets of table structure! –  aSeptik May 6 '10 at 15:07
2  
its a simple table structure: <table><tbody><tr><td></td></tr><tr><td></td></tr><tr><td></td></tr><tr><td></td‌​></tr><tr><td></td></tr></tbody></table> –  Mark May 6 '10 at 15:09

4 Answers 4

up vote 8 down vote accepted

You need to do it like this:

$(".stripeMe tr:nth-child(4n)").add(".stripeMe tr:nth-child(4n-1)").addClass("alt");​​​​​​​​
//or...
$("tr:nth-child(4n), tr:nth-child(4n-1)", ".stripeMe").addClass("alt");​​​​​​​​​​​​​​​​​

You can see this working here.

Using this:

$(".stripeMe tr:nth-child(4n), .stripeMe tr:nth-child(4n-1)").addClass("alt");​​​​​​​​

gets different results (namely in webkit, possibly others).

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This worked for me, thanks very much. –  Mark May 6 '10 at 15:27
    
How can i apply a different css class to the first 2 rows only now? Thanks btw! –  Mark May 6 '10 at 15:29
    
@Mark - If you mean just the very first 2, then like this: $(".stripeMe tr:lt(2)").addClass("otherClass");​​​​ –  Nick Craver May 6 '10 at 15:34

With the `:nth-child´ selector: http://api.jquery.com/nth-child-selector/

$(".stripeMe tr:nth-child(4n), .stripeMe tr:nth-child(4n-1)").addClass("alt");
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This doesn't work :) jsfiddle.net/ndn67 –  Nick Craver May 6 '10 at 15:11
    
Your example works fine for me... –  RoToRa May 6 '10 at 15:14
    
@RoToRa - Open it in webkit :) –  Nick Craver May 6 '10 at 15:14
    
@Nick: The results at that link look good to me, too. –  BlairHippo May 6 '10 at 15:16
    
@BlairHippo - Don't test in a single browser, try chrome/safari...selectors that are sometimes implemented by the browser and emulated by jquery if not present may not always have the same behavior, which is the case here. –  Nick Craver May 6 '10 at 15:17

You can use the filter function to filter the set any way you like:

$(".stripeMe tr")
.filter(function(i){ return (i % 4) >= 2; })
.addClass("alt");

This will keep the items with index 2, 3, 6, 7, 10, 11 and so on. Note that the index is zero based, so the third row as index two.

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I made a different approach for this problem using a for loop and .eq() method.

var a = 2; // start from 2 because eq() counts from 0
var b = 3; // start from 3 because eq() counts from 0
var total = $('.stripeMe td').length;

for (i = 0; i <= total; i++){
    if (i == a){
        $('.stripeMe tr:eq('+a+')').css('background', 'red');
        a+=4;
    }
    else if (i == b){
        $('.stripeMe tr:eq('+b+')').css('background', 'blue');
        b+=4;
    }
};

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