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    $('[id]').each(function () {

        var ids = $('[id="' + this.id + '"]');

        // remove duplicate IDs
        if (ids.length > 1 && ids[0] == this) $('#' + this.id).remove();

    });

The above will remove the first duplicate ID, however I want to remove the last. I've tried $('#'+ this.id + ':last') but to no avail.

Fiddle

In the fiddle the input with the value 'sample' should be kept when the append action takes place.

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i've edited my answer, please try it. mine work smoothly –  Noval Agung Prayogo Apr 2 '13 at 9:06

6 Answers 6

up vote 5 down vote accepted

you can use jquery :gt(0) filter for excluding the first element. e.g

$('[id]').each(function (i) {
    var ids = $('[id="' + this.id + '"]');
    if (ids.length > 1) $('[id="' + this.id + '"]:gt(0)').remove();
});
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1  
$(this).attr('id') === this.id –  Alnitak Apr 2 '13 at 9:13
    
i've updated my code. thanks –  Noval Agung Prayogo Apr 2 '13 at 9:54
    
rather than repeating the selector with :gt(0) you could just use ids.slice(1) to get everything except the 0th element in ids –  Alnitak Apr 2 '13 at 13:08

Try:

 $('[id="' + this.id + '"]:not(#" + this.id + ":first)').remove();
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try this

var duplicated = {};

$('[id]').each(function () {   

    var ids = $('[id="' + this.id + '"]');

    if ( ids.length <= 1 ) return  ;

    if ( !duplicated[ this.id ] ){
         duplicated[ this.id ] = [];   
    }       

    duplicated[ this.id ].push( this );

});

// remove duplicate last ID, for elems > 1 
for ( var i in duplicated){

    if ( duplicated.hasOwnProperty(i) ){  

             $( duplicated[i].pop() ).remove();            
    }
}

and jsfiddle is http://jsfiddle.net/z4VYw/5/

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pop will only return one element. –  Alnitak Apr 2 '13 at 9:24
    
@Alnitak updated answer –  rab Apr 2 '13 at 10:00

This code is longer than some of the others, but the double-nested loop should make its operation obvious.

The advantage of this approach is that it only has to scan the DOM to generate the list of elements with an id attribute once, and then uses the same list to find (and remove) the duplicates.

Elements that were already removed will have parentNode === null so can be skipped while iterating over the array.

var $elems = $('[id]');
var n = $elems.length;

for (var i = 0; i < n; ++i) {
    var el = $elems[i];
    if (el.parentNode) {  // ignore elements that aren't in the DOM any more
        var id = el.id;
        for (var j = i + 1; j < n; ++j) {
            var cmp = $elems[j];
            if (cmp.parentNode && (cmp.id === id)) {
                $(cmp).remove();  // use jQuery to ensure data/events are unbound
            }
        }
    }
}
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+1, but if you do have a condensed version, please do share as well! –  Samuel Liew Apr 2 '13 at 9:29
    
@SamuelLiew I don't think an efficient condensed version is practical, all the ones here do multiple DOM traversals. –  Alnitak Apr 2 '13 at 9:30
    
downvoter - please explain? –  Alnitak Apr 2 '13 at 9:58

you can try

$("#ID").nextAll().remove();
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he can try, but it won't work. It'll remove every following sibling of #id regardless of what element or ID they have. –  Alnitak Apr 2 '13 at 9:15

I'd use not() to remove the current element from ids and remove the rest:

(Fiddle)

$('body').on("click", ".placeholder", function() {

    data = '<section id="e1"><input name="e1name" /></section><section id="two"><input name="two" value="two section" /></section>';

    $('form').append(data);

        // ideally I'd like to run this function after append but after googling I find that's not possible.
        // for each ID ...
        $('[id]').each(function () {

            var ids = $('[id="' + this.id + '"]');

            if (ids.length>1) {                    
                ids.not(this).remove();            
            }

            return;

        });

});
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