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I have a <select>, and on button click users can select the next option:

$(".someButton").on('click', function () {
   var $opt = $("select :selected");

   $("select").val($opt.next().val());
});

The problem is that on the last option, $opt.next().val() returns some unselectable value, and apparently jQuery selects the first option by default. What I would like is for it to stay on the last option.

Is there any way to do this (preferably without checking the position of $opt or the length of $opt.next())?

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Do you really need to rely on the value? If not, what about using $("select option:selected").next().prop("selected", true) instead? –  pimvdb Jan 25 '13 at 15:49
1  
@pimvdb Joseph Silber stole your answer (probably not on purpose), but if you make an answer for this I will accept it. –  Explosion Pills Jan 25 '13 at 15:55

2 Answers 2

up vote 4 down vote accepted

Here's a more efficient way to do it:

$(".someButton").on('click', function () {
   var el = $("select")[0];
   el.selectedIndex = Math.min(el.selectedIndex + 1, el.length - 1);
});

If you want to stick to jQuery, set the option to selected:

$opt.next().prop('selected', true);

If $opt is the last one, .next() will return an empty set, so nothing will change.

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I would just handle the case to be honest. It would be simple to add the following:

if(!$opt.is(':last-child')) {
    $("select").val($opt.next().val());
}
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1  
They really don't need to re-select the last value, so maybe something like if(!$opt.is(':last-child')) { $("select").val($opt.next().val()); } and that's it –  Ian Jan 25 '13 at 15:54
    
Yes, I wasn't sure if it was affecting multiple selects which is why I wrote it like that, I'll update answer though –  CodePB Jan 25 '13 at 16:03

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