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I want to use the jQuery.css() property to color property of a link. The straightforward way would be to use

var $el = $("#test a:link"); //don't want to use this
$el.css({"color"  : "red"});

but I already have $el defined and used in multiple other places as

var $el = $("#test"); 

Can I still access the a:link a:visited a:hover a:active properties by reusing $el combined with some other code?

($el/*other code to access a:link of #test*/)
.css({"color"  : "red"});

http://jsfiddle.net/RUYfZ/1/ Thanks.

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5 Answers 5

up vote 2 down vote accepted

jQuery takes an optional 'context' parameter allowing you to search inside an existing result:

var $el = $("#test"); 
$('a:link', $el).css({"color"  : "red"});

The context can be a DOM element, document, or jQuery object.

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thanks this was what I was looking for. –  fortuneRice Sep 7 '11 at 20:48

If all you are doing to $el is assigning css properties, you don't even need to use the variable. Try the following

$('#test a:link').css('color', 'red')

Or, if $el is currently defined as #test (it points to the element with the id test), you can do

$('a:link', $el).css('color', 'red')
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thanks @Jim the second line is what I was looking for. –  fortuneRice Sep 7 '11 at 20:50
$el.find('a:link').css('color', 'red');


edit: applied this solution to your jsfiddle: http://jsfiddle.net/RUYfZ/3/

Also, not sure what you mean by using the :visited, :hover, :active pseudo-selectors. jQuery selectors are used for querying the DOM, not for state-dependent styling. Even in CSS, those pseudo-selectors all select the same DOM nodes, they just apply different styles depending on the state.

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If $el is in scope in the location you wish to use it, it can be reused. If $el is out of scope, you will need to assign it again.

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Use jQuery's .children() selector method, where you give jQuery a selector to operate on the children of the given parent element, as such: $el.children('a:link')

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2  
His original selector, "#test a:link", allows the anchor to be n-levels deep below #test. This example requires it to be an immediate child. Using .find() will allow a deeper hierarchy. –  jmar777 Sep 7 '11 at 19:26
    
Great point. Realized this after I posted my solution. –  Mattygabe Sep 7 '11 at 19:30

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