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the ajax loaded div below is "display:none" and it's position will be setted correct just, when the display style is not none! WHY? Is there a workaround? I'm thankful for any advice ...

function setTwPopup(x,y){
    $.ajax({
        url: "twPopup.html",
        async : false,
        success: function(result){
            $('body').append(result);
        }
    });
    var popUp = $('.twPopup');
    var x = x-71;
    var y = y-342;
    popUp.offset({'top': y, 'left': x});
    //popUp.draggable({ handle: popUp });
    //popUp.fadeIn(400);
}

Edit: A workaround with setting opacity to 0 instead of display: none is not good, because i need the .fadeIn() afterwards ... and fadeIn will fade it to the bevore setet

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Did you set any absolute/relative positioning on the div (and its parent)? –  Salman A Apr 7 '11 at 8:44

2 Answers 2

up vote 4 down vote accepted

How about this:

function showThatDiv() {
    thatDiv.css({
        display: 'block',
        opacity: 0
    });
    // calculate x and y HERE
    thatDiv.css({
        left: x,
        top: y
    }).fadeIn("slow");
}
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1  
thx .. when using .css instead of offset, it works perfectly! –  haemse Apr 7 '11 at 9:20
    
Thanks perfect. –  Deckard Jan 22 '13 at 14:56

If an element is set to "display:none", you can't set position, width or height, elements has to be visible for calculation. Althought, you can set:

visibility: hidden;

OR

position: absolute;
left: -99999px;

Hope that helps!

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with css height and top instead of the offset method it works ... –  haemse Apr 7 '11 at 11:31

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