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.

very simple but guess what, not for me. I have a comma separated list like this: Option1,Option2,Option3 that I want to append to a <select> so it becomes <select><option>Option1</option><option>Option2</option><option>Option3</option></select>

I can "split" the list like this (inside a function that gets the list):

var optionsarray = $(this).val().split(',');

    $(optionsarray).each(function(i){
        var seloption = '<option value="'+optionsarray[i]+'">'+optionsarray[i]+'</option>'; 
    });

But now how do I append seloption to my select list. If I put

$('#selecttoappendto').append('<option value="'+optionsarray[i]+'">'+optionsarray[i]+'</option>');

or

$('#selecttoappendto').append(seloption);

inside the each loop nothing happens. Take it outside the each I can append say optionsarray[0], or optionsarray[1] etc. but I cannot get to append optionsarray[i] which ever way I do it (inside or outside the each). Help please - thanks in advance

share|improve this question

2 Answers 2

up vote 2 down vote accepted

Starting with an empty string, you can build a string in the loop usingt +=. Then .append() the string.

var optionsarray = $(this).val().split(',');

var seloption = "";

$.each(optionsarray,function(i){
    seloption += '<option value="'+optionsarray[i]+'">'+optionsarray[i]+'</option>'; 
});

$('#selecttoappendto').append(seloption);

or another option would be to build the elements separately, store them in a container, then append them from the container.

var optionsarray = $(this).val().split(',');

var temp_sel = $('<select>');

$.each(optionsarray,function(i){
    temp_sel.append('<option>',{text:optionsarray[i],
                                value:optionsarray[i]
                                });
});

temp_sel.children().appendTo('#selecttoappendto');

Fixed missing () after children.

share|improve this answer
    
many thanks, perfect, I "know" about += - bit like .= in PHP but could not get it to work, assume that is why you declare var seloption = ""; first –  Russell Parrott Feb 11 '11 at 13:58
    
@Russell: Yes exactly, you need to initialize it with an empty string before you +=. –  user113716 Feb 11 '11 at 14:00

Here's what I wrote and use; it's a little faster than the solution user113716 gave, because you're skipping creating the temp select, all those appends to that temp select (even if it is a DOM fragment, it still takes some time), and you're also skipping the .children() find and unwrapping at the end for that final append.

// Appends multiple elements all at once; maintains chaining
$.fn.appendAll = function ($eleArr) {
    var numEles = $eleArr.length
    ,    $useEle = new $();
    if (numEles) {
        while (numEles--) {
            $useEle = $eleArr[numEles].add($useEle);
        }
        return $(this).append($useEle);
    }
};

// Prepends multiple elements all at once; maintains chaining
$.fn.prependAll = function ($eleArr) {
    var numEles = $eleArr.length
    ,    $useEle = new $();
    if (numEles) {
        while (numEles--) {
            $useEle = $eleArr[numEles].add($useEle);
        }
        return $(this).prepend($useEle);
    }
};

So:

var optsArr = $(this).val().split(','),
    $options = [],
    thisOption;

$.each(optsArr, function(i) {
    thisOption = '<option value="' + optsArr[i] + '">' + optsArr[i] + '</option>';
    $options.push($(thisOption));
});

$yourSelect.appendAll(optsArr);

I actually wrote those plugins for exactly this; doing it this way, I build a 1500+ option select in under 250 ms. :D

share|improve this answer
    
In case anyone's wondering it should be $yourSelect.appendAll($options); –  CJ Dennis Aug 30 at 13:16

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.