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I have a popup I want to show at the location of the clicked link - and I wish to reuse the same popupwindow. So if another link is pressed when the popup is already displayed, I want it to fadeout before changing positions and performing a new slideDown. This means using a subfunction - but the position function doesn't seem to accept the referred Jquery object. No Errors, just not displaying the div. Any suggestions?? Thanks!


       $('.txtTd').click(function() {
            var selector=$(this);

            if ( $("#popupHelpTxt").is(':visible') ) {
                $("#popupHelpTxt").fadeOut(200, function() {
                        my:        "left top",
                        at:        "left bottom",
                        of:        selector, 
                        offset:     "0, 0",
                        collision: "fit"
            } else {
                    my:        "left top",
                    at:        "left bottom",
                    of:        this,
                    offset:     "0, 0",
                    collision: "fit"

It does work (with a malpositioned popup) if i replace 'selector' with something else in the position argument.

Thanks in advance!

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Where are you getting this .position() method that takes an object. I don't see that in standard jQuery. –  jfriend00 Apr 19 '12 at 0:19
I'm also not familiar with'position', is it JS only? Try var selector = $(this)[0]; –  Kyle Macey Apr 19 '12 at 1:54
Sorry if unclear! It's a jQuery UI function! Thanks for the proposed solutions but they are not working. –  user1244785 Apr 19 '12 at 8:45
@Kyle . It's a jQuery UI function! To fill you in a little bit: It will position the div aligned to '#popupHelpTxt' (itself, that is) if I move the expression var selector=$(this); into $("#popupHelpTxt").fadeOut(200, function() {... –  user1244785 Apr 19 '12 at 8:54

1 Answer 1

From the jQuery UI position documentation:

Utility script for positioning any widget relative to the window, document, a particular element, or the cursor/mouse.

Note: jQuery UI does not support positioning hidden elements.

Does not need ui.core.js or effects.core.js.

My suggestion would be to stick with fades, and write the fade functions manually with animate, and only adjust the opacity factor, not display

share|improve this answer
Thanks @kyle! I see what you mean but I doubt this is the problem since the code after else, that is the code that displays and positions the div if it is indeed NOT visible - works just fine! I fiddled around a little and noticed that the div is indeed displayed, just further down and to the right, further away with each click - so far you have to scroll the window to see it. –  user1244785 Apr 19 '12 at 13:39
Actually, no. The first function of slideDown is to set display:block, which makes it visible, so the code can execute. Your first function is in callback of fadeOut, so it doesn't execute until AFTER fadeOut sets display:none, which is the last step in fadeOut. –  Kyle Macey Apr 19 '12 at 15:19
Tot test this, move the slideDown after the position statement. It shouldn't move it. –  Kyle Macey Apr 19 '12 at 15:20
It still did move it when I moved slideDown after the position statement, this, however did the trick: $("#popupHelpTxt").css('display','inline-block').position({ my: "left top", at: "left bottom", of: selector, offset: "0, 0", collision: "fit" }).css('display','none').slideDown(200); It ain't pretty, but functionality is there. Suggestions? Thanks for your ideas so far! –  user1244785 Apr 19 '12 at 17:52

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