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<a href="#addFriend" rel="facebox" title="[+] add <?php echo $showU["full_name"]; ?> as friend">
    <div class="addFriend"></div></A>

<div id="addFriend" style="display:none; margin: auto;">
    <form action="javascript:DoFriendRequest()" method="post">
        <input name="commentFriend" type="text" id="commentFriend" value="" size="22"> 
        <input name="submit" type="submit" id="submit" value="Send">
    </form>
</div>

My form when it's inside this element which is a jquery lightbox, the field #commentFriend get empty value in DoFriendRequest

function DoFriendRequest() {
    var wrapperId = '#insert_svar';
    $.ajax({ 
        type: "POST",
        url: "misc/AddFriendRequest.php",
        data: {
            mode: 'ajax',
            comment : $('#commentFriend').val() 
        },
        success: function(msg) {
            $(wrapperId).prepend(msg);
            $('#commentFriend').val("");
        }
    });
}

Updated answer

But when I remove the display:none, it works. How can I solve this?

share|improve this question
    
First, you should fix your HTML: You're missing a </form> –  Pekka 웃 Aug 21 '10 at 10:54
    
Can you show the entire code of where you're getting this? Also is this <form> repeated more than once in the page? –  Nick Craver Aug 21 '10 at 11:08
    
If you have multiple form(s) on a page and haven't closed one. it will impact the others. –  DMin Aug 21 '10 at 11:11
    
The form is not repeated more than once on the page. There's 2 other forms on the page, but that is after this one? I just doublechecked and they are all closed –  Karem Aug 21 '10 at 11:15
1  
@Karem - What confuses me is you cay it works without the display:none, but from what you posted the form would be hidden complete with it on there....so how does it "not work" with it, isn't the <form> completely hidden? How are you even submitting to see it doesn't work? –  Nick Craver Aug 21 '10 at 11:23

2 Answers 2

There are three ways you can go about this;

  1. Make the element visible, update it, then hide it again.

  2. detach() the element from the DOM, make it visible, update it, hide it, and then re-insert into the DOM.

  3. clone() the element, make it visible, update it, hide it, insert it into the DOM and remove the original element.

Approach #2 and #3 are probably your best options, since these won't trigger a re-draw. All operations are done to the elements "outside" of the DOM (in memory, if you will). This way your UI wont jump/skitter/shift.


Approach #3:

$(function ()
{
    var e = $("...");
    var c = e.clone();

    c.show();
    c.html("...");
    c.hide();

    e.after(c);
    e.remove();        
});

A shoter version (not tested):

var e = $("...");

e.append(e.clone().show().html("...").hide()).remove();



Approach #2:

Note: you will need a container which you can re-insert the detached element into

$(function ()
{
    var e = $("...");
    var c = $("container");

    e.detach();
    e.show();
    e.html("...");
    e.hide();
    c.add(e);    
});

And just for good measure - not tested - the shorter version:

$("container").add($("...").detach().show().html("...").hide());
share|improve this answer
    
could you go with an example on how you deatch,visible,update,hide,re-insert ? I have never used those before –  Karem Aug 21 '10 at 12:17

For fields with display:none, it seems that val() does not work.

I bypass this behavior with attr():

$('input').attr('value',myNewValue);
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