Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I need to move certain <option> elements from one <select> list to the other - and perhaps back and forth as well - so it can't rely on hard-coded data and I need to target the <option> elements I want to move via their value attribute.

So say I have this html:

<option value="1">cat #1</option>
<option value="2">cat #2</option>
<option value="3">cat #3</option>
<option value="4">cat #4</option>
<option value="5">cat #5</option>
<option value="6">cat #6</option>

Then say I want the elements with the values 3,4,5 how can I do this?

Edit: It would be ideal if I could pass the values wanted in as above such as 3,4,5.

Edit 2: These values also need to be removed from the select list they are taken from.

After I get the data back I will be appending it to another select list such as:

$(dataVar).appendTo('#selected_cats');
share|improve this question
up vote 2 down vote accepted

Use an attribute selector:

var selector = dataVar.split(',').map(function(el) {
    return 'option[value='+el.trim()+']';
}).join(',');
$(selector).appendTo('#selected_cats');

DEMO

share|improve this answer
    
The values I get are returned to me in a comma delimited fashion - is there any way to pass the values in like that instead? – Brett Apr 4 '14 at 17:50
    
It shouldn't be appending strings, it should be adding options to the other select. – Barmar Apr 4 '14 at 17:52
    
See the fiddle demo – Barmar Apr 4 '14 at 17:56
    
Sorry, what I mean is, the values that I want to get get would be great if I could do something like: dataVar = $('4,5,6'); to get the correct elements wanted. I know that's not valid code, just trying to show you what I meant. Also, I just noticed your code only adds the elements to the new select list, doesn't take/remove them from the first select; sorry if I wasn't clear. – Brett Apr 4 '14 at 18:02
    
I've changed my answer to start with the comma-separated list of values, and updated the fiddle to work with that. – Barmar Apr 4 '14 at 19:08

What I did was this..

var data_holder = '';

$.each(mr_val, function(index, number) {
    data_holder += '#all_cats option[value="' + number + '"], ';
});        

// Ge rid of last space & comma
data_holder = rtrim(data_holder, ' ,');

// Now remove options from first select and append to the other
var options = $(data_holder).appendTo('#selected_cats');
share|improve this answer
    
Your selector is wrong. You need to put #all_cats in the $.each loop. You're only using that prefix for the first option, not the rest. – Barmar Apr 4 '14 at 19:15
    
@Barmar I'm not sure what you mean. The each loop is simply formatting a text string from the passed in value string which holds the values such as 4,5,6. – Brett Apr 4 '14 at 19:31
    
When you concatenate '#all_cats ' and data_holder, the selector looks like $('#all_cats option[value="1"], option[value="2"], option[value="3"]'). So the ID is only referenced when selecting option[value="1"], but not the other two. – Barmar Apr 4 '14 at 19:38
    
It should be: $('#all_cats option[value="1"], #all_cats option[value="2"], #all_cats option[value="3"]') – Barmar Apr 4 '14 at 19:39
    
@Barmar Ohhh... I get what you mean now. Thanks! – Brett Apr 4 '14 at 19:46

Something like this...?

function moveOptions(sourceList, targetList, movableValues) {
    sourceList.find('option').each(function(){
        if (movableValues.indexOf($(this).val()) > -1) {
            $(this).appendTo(targetList);
        }
    });
}

// Usage:
var pullFrom = $("#list1");
var moveTo = $("#list2");
var moveThese = ['3','4','5'];

moveOptions( pullFrom, moveTo, moveThese );
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.