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I am new to javascript and jquery so please bear with me.

First of all here is my code so that you can test it to see whats wrong: http://jsfiddle.net/Lzw4e/1/

I want to create a new hidden field every time the user selects from the left <select> element and remove / destroy the hidden field when the user clicks the right <select> element.

I used the jquery command $("<input type='hidden' value=selectedAddFootballPlayerId>"); but when I checked of firebug I can't see any hidden field being created. For removal of the hidden field I really don't know.

Please help me. Thanks in advance.

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It's not enough to just create the element, you have to place it somewhere on the page as well. –  Juhana Nov 19 '11 at 17:35
    
So you mean I really have to make at least one hidden field? What I want to happen is that whenever a user adds a football player that's the time a hidden value will be created to hold the value of the selected football player. –  NinjaBoy Nov 19 '11 at 17:38

5 Answers 5

up vote 1 down vote accepted

I think you are confused when defining the selector or where you want to display your new item. Try with this (I use text inputs):

http://jsfiddle.net/Lzw4e/6/

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For this you can use .append().

$("body").append("<input type='hidden' value=selectedAddFootballPlayerId>");

For removal, use .remove().

$("input[type='hidden']").remove();

Be careful when using my example, as it'll remove all form elements that are hidden. If you want more prescision, you can assign an id value to the hidden input and then call that as your selector in the second example.

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You have to append the field:

$("<input type='hidden' value=selectedAddFootballPlayerId>").appendTo('#someSelector');
share|improve this answer
    
is it alright if the selector is a div? –  NinjaBoy Nov 19 '11 at 17:41
    
jQuery doesn't mind any html validity when appending, it will just do it. So it doesn't matter if it's a div or a select or something else :) –  Sgoettschkes Nov 19 '11 at 18:23

To create -

var $ip = $('<input>').attr({
    type: 'hidden',
    id: 'yourid',
    name: 'yourname',
    value: 'yourvalue' 
})
$(ip).appendTo('body');

Then to remove -

$ip.remove();
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Working version

http://jsfiddle.net/Lzw4e/7/

Changes

1

$("<input type='hidden' value=selectedAddFootballPlayerId>");
to
$('body').append("<input type='hidden' value=\""+selectedAddFootballPlayerId+"\">");

2

$('#listboxFootballPlayers').append(option);
to
$('#listboxFootballPlayers').append(option);
$('input[type="hidden"][value="'+selectedRemoveFootballPlayerId+'"]').remove();
share|improve this answer
    
Thanks but I have already chosen. Thanks again anyway. –  NinjaBoy Nov 19 '11 at 17:57
    
No problem, dont forget to add that input a name, if your working with array probably player or player[] will be needed to process that information –  Utku Yıldırım Nov 19 '11 at 19:25

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