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I have a list of spans with particular class "place" and some of them have class "activated". Is there a way to select the first item with class "activated" and the last?

<span class="place" onclick="activate();">1</span>
<span class="place" onclick="activate();">2</span>
<span class="place activated" onclick="activate()">3</span>
<span class="place activated" onclick="activate();">4</span>
<span class="place activated" onclick="activate();">5</span>
<span class="place activated" onclick="activate();">6</span>
<span class="place" onclick="activate();">7</span>
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4 Answers 4

up vote 19 down vote accepted
var firstspan = $('span.activated:first'),
    lastspan = $('span.activated:last');

By the way, if you're using jQuery, what's with all the inline click events?

You could add some code like so:

$('span.place').click(function() {
    activate(); // you can add `this` as a parameter
                // to activate if you need scope.
});
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+1 for fastest correct answer ;-) –  netadictos Nov 2 '10 at 22:34
1  
I have a lot of those spans and in each one of them theres this activate function with different atributes, so I think its better that way. Thanks for great reply –  tsusanka Nov 2 '10 at 22:43
var places = $('span.place.activated');

var first = places.first(),
    last  = places.last();

Explanation: The span.places.activated selector will get all <span>s with both "place" and "activated" classes. Then the first() and last() methods will return the first and last items of that set. This is preferable to using the :first and :last pseudoselectors because selection is expensive and this way we only do selection once and then rely on (cheap) array operations to get the first and last elements.

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+1 for not running the selector twice. –  user113716 Nov 3 '10 at 0:35
    
+1 'cause I agree with patrick. This is probably the better answer! –  Stephen Nov 3 '10 at 3:57
var first = $('.activated:first');
var last = $('.activated:last');
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If you take care about performance, than better use $('span.place.activated') instead $('.activated:first'). But, in this case, the second variant correct too.

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