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Does anyone know if there exist some kind of selector to select al the elements from a matched set but the one given by the indicated index. E.g.:

$("li").neq(2).size();

Supposing that there were 5 elements, the last statement would give you 4, and would contain all the <li> elements but the second one in the DOM.

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up vote 41 down vote accepted

Use not:

$('li').not(':eq(2)');
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if you want the fastest neq use a filter see jsperf.com/jquery-fastest-neq-filter – mike Jan 2 at 8:17

The other answers will work just fine, but as an alternative you could implement you own custom selector for neq

$.extend($.expr[":"], {  
    neq: function(elem, i, match) {  
        return i !== (match[3] - 0);
    }  
});  

And then you could do what you originally suggested.

$("li:neq(2)").size();

Although another post suggested using .length instead of .size, which will be better as its just a property and not an extra function call.

$("li:neq(2)").length;
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1  
Watch the syntax, it has changed in 1.8 stackoverflow.com/questions/11624345/… – Kevin B Aug 21 '12 at 14:45
1  
Also, doesn't this create a pseudo selector, not a method? $("li:neq(2)") – Kevin B Aug 21 '12 at 14:48
    
@KevinB: Whoops! Yes, it does. Have updated accordingly. – James Wiseman Aug 21 '12 at 14:51

I would use filter for such case,

$('li').filter(function (i, item) {
   return i != 2;
})
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Alright, it's just

$("li:not(:eq(2))");
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No, that's a syntax error. – BoltClock Aug 21 '12 at 14:42
    
fixed, my bad! :( – manutenfruits Aug 21 '12 at 15:06

In addition to the custom selector, you could also implement this as a jQuery plugin:

$.fn.neg = function (index) {
    return this.pushStack( this.not(':eq(' + index + ')') );
}
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