Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Ok..I need to know the fastest way to remove hundreds of options from a dropdown list.

Right now, Firefox is really slow at updating my 2nd drop down dynamic list. Chrome is doing OK with the script but I need to speed up my removal of:

<select id="myDropDown" name="myDropDown">
<option value=1>1</option>
<option value=2>2</option>
<option value=3>3</option>
<option value=4>4</option>
<option value=5>5</option>
... all the way to let's say 500
</select>

Repopulating it is a breeze. I have a json parser that creates the fields.

I've tried: .remove() .children().remove()
.empty()

They all have the same sluggish performance in removal of hundreds of options. Is there something i'm missing?

thanks

share|improve this question
1  
How are you deciding which elements to remove? It would likely be faster to work out which elements you need to populate the select with, rather than populate it and then work out which to remove. –  David Thomas May 6 '11 at 20:56
    
I want all of the <option> elements removed between the <select></select> field item. It's getting updated with new data from an ajax json call. So each time field A is changed, field B gets changed. So wipe out what's in field B then repopulate from the ajax json call. –  Loony2nz May 6 '11 at 20:59
1  
Oddly, and I realise it's a minimal example with nothing else on the page, but a select element, containing 2339 options, can be emptied more or less instantaneously: JS Fiddle. Could you post a link to a live demo reproducing your problem? –  David Thomas May 6 '11 at 21:34

4 Answers 4

Have you tried looping through them?

$('#myDropDown option').each(function(i, option){ $(option).remove(); });

You can specify which ones by keeping track of the value of i.

share|improve this answer
    
Yeah that would work if I wanted to keep track of what they chose. Which I don't want to. Bascially think of it like a State/City combo. If I choose California, I'll get every city in California in the 2nd drop down (potentially hundreds). Now if I change California to say, Alaska, I would need to remove all of California's cities and replace with Alaska's cities. –  Loony2nz May 6 '11 at 21:01

Interesting question. I think that if you want it to be really fast, you could just show/hide the options

$("#someOption").hide();

EDIT: I think you may have an array of values that have to populate, let's say values. It'd be fast if you traverse your options first and check for each one if it's in the values array (not vice versa, would be slow). So having:

var values = [...]; //Array with values that must 'exist' in the dropdown
$("#select1 option").each(function(i, option){
   option.style.display = ($.inArray(option.value, values) >= 0 ? 'block' : 'none');
});

Note that we're avoiding jquery selectors inside the loop to boost performance. We are not traversing the array first (and options inside) because searching in an array is much faster than searching an element (option in this case) with a specific attribute (value in this case) in the dom.

Hope this helps. Cheers

share|improve this answer
    
yeah, this doesn't help :( –  Loony2nz May 6 '11 at 21:02

The problem could be that jQuery attempts to cleanup when removing things, read .empty() for details (starting with "To avoid memory leaks...").

If you think that this isn't a problem in your situation, then

$("#someOption").text("");

may be the sledgehammer you need.

share|improve this answer
$("#myDropDown").find("option").remove();
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.