Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Doing odd/even styling with jQuery is pretty easy:

$(function() {
  $(".oddeven tbody tr:odd").addClass("odd");
  $(".oddeven tbody tr:even").addClass("even");
});

Now I came across an interesitng problem today. What if you want to style alternating groups of elements? For example, alternating blocks of 3. Longhand this can be done this way:

$(function() {
  $(".oddeven3 tbody tr:nth-child(3n+1)").addClass("odd");
  $(".oddeven3 tbody tr:nth-child(3n+2)").addClass("odd");
  $(".oddeven3 tbody tr:nth-child(3n+3)").addClass("odd");
  $(".oddeven3 tbody tr:nth-child(3n+4)").addClass("even");
  $(".oddeven3 tbody tr:nth-child(3n+5)").addClass("even");
  $(".oddeven3 tbody tr:nth-child(3n+6)").addClass("even");
});

Seems a bit longwinded though. Now it can be somewhat simplified and made generic like this:

function oddEvenGroupStyle(groupSize) {
  for (var i=1; i<=groupSize; i++) {
    $(".oddeven" + groupSize + " tbody tr:nth-child(" + groupSize + "n+" + i + ")").addClass("odd");
    $(".oddeven" + groupSize + " tbody tr:nth-child(" + groupSize + "n+" + (groupSize+i) " + ")").addClass("even");
  }
}

and:

$(function() {
  oddEvenGroupStyle(3);
});

Seems like a bit of a hack to me though. Is there some more jQuery-ish way of selecting the right rows?

share|improve this question
    
What's the performance like when doing this sort of thing in jquery instead of styling each row on the original HTML - if you have a big table do you see it rendered on the screen without the odd/even then re-render (flicker) to the correct state? –  Nick Pierpoint Feb 6 '09 at 9:19

4 Answers 4

up vote 3 down vote accepted
function oddEvenGroupStyle(groupSize) {
    var even = false;
    $('tr').each( 
        function(i){ 
            if(!(i % groupSize)) even = !even;
            $(this).attr('class', (even ? 'groupEven':'groupOdd') ); 
    })
}
share|improve this answer
    
5th line. I might be wrong but I guess it won't work. –  ohnoes Feb 5 '09 at 12:35
    
I've tested it in Firefox, IE and Opera, using groupSize in range 1 to 11, everything woked well :) –  pawel Feb 5 '09 at 13:02
    
Why wouldn't you use addClass instead of attr()? –  cletus Feb 6 '09 at 1:54
    
+1 I have just an odd class (but thought I'd ask in the more general case of an even class too), which simplified the logic to (i / groupSize) & 1 == 0 but this is basically what I used. Thanks. –  cletus Feb 6 '09 at 2:19

1) why have a odd AND and a even class, if you have a default style and then have a overriding odd it will probably be quicker

2) can't you render out the html with the styling already applied? say if your doing this in PHP or ASP.net. doing it after the fact is slower, especially if you have a lot of rows.

share|improve this answer
    
As it happens I do have just an odd class but Ifigured I'd ask in the more general case when you wanted both. –  cletus Feb 6 '09 at 2:17

I would add a class to the first TR in a group:

<tr class="group"><td>Group 1</td></tr>
<tr class="grouppart"><td>Part of group 1</td></tr>
<tr class="grouppart"><td>Part of group 1</td></tr>
<tr class="group"><td>Group 2</td></tr>
...

This way you can change the size of groups as you go without any modification to your javascript.

// Format the groups:
$("tr.group:even").addClass("even");
$("tr.group:odd").addClass("odd");

// Then apply to groupparts:
$("tr.grouppart").each(function(){
    var oGroup = $(this).prevAll("tr.group:first");
    if(oGroup.hasClass("even")){$(this).addClass("even");}
    if(oGroup.hasClass("odd")){$(this).addClass("odd");}
});

Note: I wrote this from memory, so there might be some small glitches in there. Please comment if that's the case and I'll fix it.

share|improve this answer
    
This is for largely static content so I just want to control the styling with minimal CSS, preferably just by adding a class to the table. –  cletus Feb 6 '09 at 2:17

cletus, if you'd like to get the job done 101% jQuery-ish consider:

  1. using each instead of classic for loop
  2. extending jQuery selector behaviour? (just a hint)
share|improve this answer
    
+1 Interesting idea. The above solution was a quicker path for this problem but I'll definitely look into this a bit later. I like the idea of it. –  cletus Feb 6 '09 at 2:19

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.