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I have a page which contains several tables, and I would like to format each table so that the second cell of each other row has a specific background color. I have tried the following jQuery code as suggested in an answer to the initial version of this question :

   $('table tr:odd td:nth-child(2)').css("background-color", "#F6F3EE");

This works fine as long as all tables have an even number of rows. If that is not the case, the formatting is inverted, as if jQuery considered the s as being part of one single table and doesn't reinitiate the counter at each table.

Here's a link to a js fiddle to illustrate the problem:

http://jsfiddle.net/davidThomas/eAHUF/

Thanks in advance

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up vote 3 down vote accepted

You're selecting only the first td element that is the descendent of a tr.reg:even row.

Try using the :nth-child() alternative:

$('table tr:odd td:nth-child(2)').css('background-color','#ffa');​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​​

JS Fiddle demo.

Note: you have to remember that the CSS :nth-child() is one-based, not zero-based (as JavaScript is).


Edited in response to OP's comment, below:

...but it presents me with a problem. I've edited your jsfiddle demo to add a row in the first table thus giving it an uneven number of rows. Now the second table's rows are reversely highlighted which is not what I was looking for. Do you have a fix for this ?

Yeah, I...missed the obvious (somehow). I've amended the above code to look at each table in turn and then look for the :odd rows and the nth-child():

$('table').find('tr:odd td:nth-child(2)').css('background-color','#ffa');​

JS Fiddle demo.

References:

share|improve this answer
    
+1 you just beat me to it! – Jasper Mar 13 '12 at 20:04
    
@David-thomas Your answer looked correct at first, but it presents me with a problem. I've edited your jsfiddle demo to add a row in the first table thus giving it an uneven number of rows. Now the second table's rows are reversely highlighted which is not what I was looking for. Do you have a fix for this ? – Argoron Mar 14 '12 at 12:32
    
I've edited, and corrected, the answer. My apologies, I'm not sure why I hadn't noticed the former flaws... =/ – David Thomas Mar 14 '12 at 15:53

Try this:

$('table tr.reg:even td:eq(1)').each(function(index) {
    $(this).css("background-color", "#F4F4F8");
});
share|improve this answer
2  
Why use each()? It's unnecessary, since css() will act on all the elements returned by the array, each() is only necessary when you need to iterate over the elements to perform different actions on them based on their index, or content... – David Thomas Mar 13 '12 at 20:05

The simplest solution is just:

$("table tr:even td:nth-child(2)").css("background-color", "#F4F4F8");

You can see it in action here: http://jsfiddle.net/rowanmanning/pBCkj/

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