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var random1 = Math.floor((Math.random()*elems.length));
var random2 = Math.floor((Math.random()*elems.length));

while (random1 == random2) {
    var random2 = Math.floor((Math.random()*elems.length));
}

$j('#project-scroller').append( elems );
$j('#project-scroller').append( elems[random1] );
$j('#project-scroller').append( elems[random2] );

So here's what's happening: elems gets appended but elms[random1] and elems[random2] doesn't.

So then I tried this instead:

$j('#project-scroller').append( elems );
$j('#project-scroller').append( elems );

And elems was only appended once, that time, too! So then I tried this instead:

$j('#project-scroller').append( elems[random1] );
$j('#project-scroller').append( elems[random2] );

And both random elems were appended. Then I tried appending random1 twice, and it was only appended once...

What am I missing? Why won't jQuery append the same elements more than once? Tried the same thing with appendTo (just for kicks), and it does the same thing.


Thanks for the answer! Here's what I ended up with:

var random1 = Math.floor((Math.random()*elems.length));
var random2 = Math.floor((Math.random()*elems.length));
while (random1 == random2) {
    var random2 = Math.floor((Math.random()*elems.length));
}
newElem1 = $j(elems[random1]).clone();
newElem2 = $j(elems[random2]).clone();
$j('#project-scroller').append( elems ).append( newElem1 ).append( newElem2 );
share|improve this question
1  
What is the value of elem? –  Elliot Bonneville May 9 '12 at 2:44

1 Answer 1

up vote 8 down vote accepted

It's not appending a copy of elems, it's appending the real thing. Use clone() to create a 2nd copy to append.

share|improve this answer
    
Thanks - that did the job. –  Luke Carbis May 9 '12 at 2:59

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