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This is related to my previous question about selecting visible elements. Now, here's the twist: Let's say I want to select the odd children only from the set of visible children of an element. What would be the best way to do this?

Edit: here is an example of my input and expected output.

<!-- A list with some visible and invisible children -->
<ul class="stripe">
    <li>Visible 1</li>
    <li style="display:none;">Visible 2</li>
    <li style="display:none;">Visible 3</li>
    <li>Visible 4</li>
    <li style="display:none;">Visible 5</li>
    <li>Visible 6</li>
    <li>Visible 7</li>
</ul>

<!-- Only the visible children. -->
<li>Visible 1</li>
<li>Visible 4</li>
<li>Visible 6</li>
<li>Visible 7</li>

<!-- The "odd" visible children. -->
<li>Visible 1</li>
<li>Visible 6</li>

I came up with two ways. One works, but the other doesn't.

// Method one: Returns the odd children whether they are visible or not. :(
var listChildren = $$("ul.stripe > li");
var oddChildren = allChildren
  .findAll(function(el) { return el.visible(); })
    .findAll(function(el) { return el.match("li:nth-child(odd)"); });
oddChildren.invoke("addClassName", "odd");

What I am currently doing now is the following:

// Method two: grouping!
var listChildren = $$("ul.stripe > li");
var oddChildren = listChildren
  .findAll(function(el) { return el.visible(); })
    .eachSlice(2, function(el) {
      el[0].addClassName("odd");    
    });

This code seems like it could be improved. Can anyone suggest a better way to accomplish this?

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2 Answers 2

up vote 1 down vote accepted

The CSS select won't work for the application you desire, it doesn't work correctly on an Array outside of the context of the DOM.

You can do this as follows:

var index = 0;
var myChildren = $$("ul.stripe > li")
    .select(function(e) { return e.visible(); })
    .select(function(e) {return ++index % 2 == 1; });
share|improve this answer
    
This code made it to production! –  Zack The Human Jan 22 '10 at 5:28
    
Great to hear Zack :) –  hobodave Jan 22 '10 at 19:30

Can't you merge the two conditions like this?

var listChildren = $$("ul.stripe > li");
var oddChildren = allChildren
  .findAll(function(el) { return el.visible() && el.match("li:nth-child(odd)"); })
oddChildren.invoke("addClassName", "odd");
share|improve this answer
    
Yes. However, the problem is that I want to select the visible elements first, and then from those select the "odd" elements. The problem with this (any with my chained findAll version) is that the elements "oddness" is being tested outside of that "visible" subset of children. –  Zack The Human Jul 17 '09 at 0:59

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