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Is there a way to only use ONE dollar sign instead of doing this?

$($(".elem")[0]).hide()

I could use :first, but what about if I wanted the third or so:

$($(".elem")[2]).hide()
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JavaScript uses zero-based arrays, therefore $($(".elem)[3]) would return the fourth element, not the third. –  David Thomas Jun 17 '11 at 20:51
    
Good catch. Regardless, it looks like the answer is to use .eq –  Jeff Jun 17 '11 at 21:42

2 Answers 2

up vote 8 down vote accepted

Use .eq() function

$(".elem").eq(3).hide()

Description: Reduce the set of matched elements to the one at the specified index.

.eq( index )

indexAn integer indicating the 0-based position of the element.

And

.eq( -index )

-indexAn integer indicating the position of the element, counting backwards from the last element in the set.

And it is 0 index based, so third would be .eq(2)

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The mistake's in the question, but that would return the fourth element matched by the selector, not the third. –  David Thomas Jun 17 '11 at 20:50
    
@David updated, last line. –  BrunoLM Jun 17 '11 at 20:52

You can use, :eq

$('.test:eq(2)').hide(); //hides the third encounter of an element with class .test

There is also :nth-child( x ) but it grabs a child element.

Read more,

http://api.jquery.com/eq-selector/

http://api.jquery.com/nth-child-selector/

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