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This originates from my original question. I'm expanding on it.

Html select options

    <select id="1d" name="camp" multiple="multiple">
    <option data-url0="week_1" value="Week 1">30th July</option>
    <option data-url1="week_2" value="Week 2">6th August</option>
    </select>
    <input type="hidden" name="camp_url0" id="1e">
    <input type="hidden" name="camp_url1" id="1f">

Jquery script I'm struggling with.

    $("#1d").on("change", function () {
    var url1 = $(this).children(":selected").data("url0");
    var url2 = $(this).children(":selected").data("url1");
    $("#1e").val(url0);
    $("#1f").val(url1);
});

This code works beautifully (maybe not the cleanest?), except for one important issue. Even though it is a multiple selector, whenever both options are selected, only one option is marked as :selected in DOM, meaning only one data-url{row_id} is being inputted. I need both, if both are selected.

I hope that makes sense. Thanks for your help.

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1  
I have posted my solution regarding your comment in the previous question: jsfiddle.net/aRzNn/2. –  VisioN Jun 5 '12 at 22:05
    
@VisioN Almost, Neal below has it almost. Your version doesn't separate the data per unique id. I really appreciate your help in this! –  Stephen Callender Jun 5 '12 at 22:28

3 Answers 3

up vote 1 down vote accepted

UPD:

Add some additional “routing” data to the html

<select id="1d" name="camp" size="5" multiple>
    <option data-url="week_1" data-id="1e" value="Week 1">30th July</option>
    <option data-url="week_2" data-id="1f" value="Week 2">6th August</option>
</select>

and use it

$("#1d").on("change", function () {
    $('input[type=hidden]').val('');

    $('option:selected', this).each(function() {
        $('#' + $(this).data('id')).val($(this).data('url'))
    })
})

http://jsfiddle.net/5ctDC/1/

OLD:

Just .map it and you will get an array with the data.

$('option:selected', this).map(function() {
    return $(this).data('url')
})

["week_1", "week_2"]

http://jsfiddle.net/5ctDC/

share|improve this answer
    
Thanks @o_nix. However, this doesn't separate them out for my different input fields (data_url0, data_url1, etc...). It simply lists them for one input field. Neal's option is perfect minus the added "undefined" for unselected options. –  Stephen Callender Jun 5 '12 at 22:36
    
So why should you use unique ids? –  o_nix Jun 5 '12 at 22:39
    
I don't know. Just thought that was the best way to grab them. Aren't they needed to input the selected options one at a time in fields? I'm amateur on Jquery. –  Stephen Callender Jun 5 '12 at 22:42
    
Do you want something like that? –  o_nix Jun 5 '12 at 22:51
    
Yes! Except with that, once unselected, it doesn't clear out. –  Stephen Callender Jun 5 '12 at 23:08

Go through ALL of the selected elements:

$("#1d").on("change", function () {
    var allurl1 = '', allurl2 = '';
    $(this).children(":selected").each(function(){
        allurl1 += $(this).data("url0");
        allurl2 += $(this).data("url1");
    });
    $("#1e").val(allurl1);
    $("#1f").val(allurl2);
});

Working Demo: http://jsfiddle.net/maniator/mtAgS/ (I made the inputs shown so you can visually see what happens)

share|improve this answer
    
The only problem with this is that it adds "undefined" to unselected option. –  Stephen Callender Jun 5 '12 at 22:21

In an unrelated note, you should'nt be using id that don't start with a letter.

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Why not? $('#1d') works perfect. Shouldn't I use id="some-element" for example? :) –  o_nix Jun 5 '12 at 22:59

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