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In jQuery, $("...").get(3) returns the 3rd DOM element. What is the function to return the 3rd jQuery element?

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9 Answers 9

up vote 145 down vote accepted

Why not browse the (short) selectors page first?

Here it is: the :eq() operator. It is used just like get(), but it returns the jQuery object.

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6  
Isn't that supposed to be .eq() instead of :eq()? –  RubenGeert Apr 6 '14 at 6:52
6  
Yes, .eq() is more appropriate for the OP's question. :eq() is used within the string parameter to $, whereas .eq() is a method on an existing jQuery object. –  mjswensen Apr 16 '14 at 19:46
19  
I swear I have to go and look this up every. single. time. –  ivarni Jun 21 '14 at 17:51
    
What about if the returned elements aren't siblings? Like getting an option in an opt group? $('select').find('option').eq(n), doesn't work if options are nested in various opt groups. –  Joel Worsham Jan 23 at 19:18
    
@JoelWorsham Depends on the desired behavior. $('select').find('option').eq(n) will basically ignore the grouping, and get all options as a whole. If you want it per group, something like this is necessary: $('select').find('optgroup').each(function() { $(this).find('option').eq(n)...; }) –  Dykam Jan 30 at 9:04

You can use the :eq selector, for example:

$("td:eq(2)").css("color", "red"); // gets the third td element

Or the Traversing/eq function:

$("td").eq(2).css("color", "red");

Also, remember that the indexes are zero-based.

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5  
As a synonym, you can also use the :nth() selector -- not to be confused with :nth-child() –  user123444555621 Dec 28 '12 at 13:50

if you have control over the query which builds the jQuery object, use :eq()

$("div:eq(2)")

If you don't have control over it (for example, it's being passed from another function or something), then use .eq()

var $thirdElement = $jqObj.eq(2);

Or if you want a section of them (say, the third, fourth and fifth elements), use .slice()

var $third4th5thElements = $jqObj.slice(2, 5);
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Was looking for slice, but wasn't sure how to search. Thanks for going beyond what is required in the original question. –  Samik R Jan 18 '13 at 22:06
3  
For people who stumble on this answer, a helpful point to note is that the nth-child selector is 1 based while :eq or .eq() are 0 based –  dotnetguy Apr 12 '13 at 5:26
1  
You should use .eq() instead of :eq() actually. Slight performance boost. –  Qwerty Aug 12 '14 at 9:00

I think you can use this

$("ul li:nth-child(2)").append("<span> - 2nd!</span>");

It finds the second li in each matched ul and notes it.

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.eq() -An integer indicating the 0-based position of the element. Ex:

Consider a page with a simple list on it:

<ul>
<li>list item 1</li>
<li>list item 2</li>
<li>list item 3</li>
<li>list item 4</li>
</ul>

We can apply this method to the set of list items:

$( "li" ).eq( 2 ).css( "background-color", "red" );

For more information : .eq()

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If I understand your question correctly, you can always just wrap the get function like so:

var $someJqueryEl = $($('.myJqueryEls').get(3));
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This is just the "hard way" and this is what eq() gives you for free. –  Caumons May 13 at 13:51

For iterations using a selector doesn't seem to make any sense though:

var some = $( '...' );

for( i = some.length -1; i>=0; --i )
{
   // Have to transform in a jquery object again:
   //
   var item = $( some[ i ] );

   // use item at will
   // ...
}
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Live Example to access and remove the Nth element with jQuery:

<html>
<head></head>
<body>
    <script type="text/javascript" 
    src="http://code.jquery.com/jquery-2.1.0.min.js"></script>
    <script type="text/javascript">
      $(document).ready(function(){
        $('li:eq(1)').hide();
      });
    </script>
    <ol>
      <li>First</li>
      <li>Second</li>
      <li>Third</li>
    </ol>
</body>
</html>

When it runs, there are two items in the ordered list that show, First, and Third. The second was hidden.

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If you already have the jquery object in a variable, you can also just treat it as a normal indexed array, without the use of jquery:

var all_rows = $("tr");
for(var i=0; i < all_rows.length; i++){
   var row = all_rows[i];
   //additionally, you can use it again in a jquery selector
   $(row).css("background-color","black");
}

Although the above example is not useful in any way, it is representing how you can treat objects created by jquery as indexed arrays.

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