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I have an unordered list whose lis are invisible (display:none) to begin with.

I want to make a specific li visible with a JS function. How can I do that?

I've tried $("#my-list li:nth-child(1)").fadeIn() but that only works if the ul is visible to begin with.

Here's my code:

ul.hide > li {
    display: none;
}
<ul class="hide" id="my-list">
    <li>1</li>
    <li>2</li>
    <li>3</li>
</ul>

I'm trying to answer this question. Feel free to take a stab at it!

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5  
Make the ul visible. An invisible element cannot have visible children. –  bdares Sep 18 '12 at 4:13
    
If ul is invisible making its li visible will do nothing. Can you clarify your question a bit? –  Ilia Frenkel Sep 18 '12 at 4:15
3  
The code you've tried is working fine.. But I didn't hide the main ul See here: jsfiddle.net/akhurshid/PSQMd –  A.K Sep 18 '12 at 4:15
    
Please read this... –  Praveen Kumar Sep 18 '12 at 8:59
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2 Answers

up vote 0 down vote accepted

Like bdares said, an invisible element cannot have a visible child. So what you said about the code is true: ul has to be visible to begin with.

Looking at the html code you could probably just remove class="hide" which will make the ul visible.

However if you can't do that, an alternative is to use Javascript to make ul visible on the fly. Instead of just:

$("#my-list li:nth-child(1)").fadeIn();

Do

$("#my-list").show();
$("#my-list li:nth-child(1)").fadeIn();
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Use this way:

$("#my-list").show(0).children("li:nth-child(1)").fadeIn();

$("#my-list").show().children("li:nth-child(1)").fadeIn();

Let me explain you why .show(0) is better than .show(). When you use .show(), it gives a transition, which eases out the DOM Element, which is not needed. It is like showing a hidden element and hiding it smoothly, which is not accepted.

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3  
.show(0)? Why? .show() will work just as well. –  false Sep 18 '12 at 4:18
    
updated the reason in the answer. –  Praveen Kumar Sep 18 '12 at 5:49
    
@PraveenKumar Check the document of api.jquery.com/show, not as you said. –  xdazz Sep 18 '12 at 5:54
    
@xdazz Yeah, I might be wrong, may be old jQuery. jsfiddle.net/q9Hz2/1 both are same. I tested now. –  Praveen Kumar Sep 18 '12 at 6:04
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