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var $track = $('>.jScrollPaneTrack', $container);

Works in jquery 1.4.2, doesn't work in jquery 1.7.2.

By 'works' I mean returning jQuery object to be able to do this, for example:

alert($track.html());

and

$track[0].css(..., ...);

etc


I think I found a solution: Instead of using the variable the usual way - track - it now wants from me to use it like that - $(track)

For example:

was:

track[0].css(..., ...);

now:

$(track[0]).css(..., ...);

Due to some new internal optimisation, when jquery returns dom-objects instead of usual jquery ones.

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2 Answers 2

That selector should work in 1.7.2, however is being depreciated in a future version of jQuery. Try doing it with .children

$track = $container.children('.jScrollPaneTrack')
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Yes, it works in 1.7.2 too - jsfiddle.net/D4UXT –  Zoltan Toth Aug 8 '12 at 15:00
    
I have tried using 'children', it won't work :( Doesn't even give me .html() contents of it. I'm trying to make this plugin code.google.com/p/droplist working with the latest jquery v.1.7.2 instead of the old 1.4.2 one, because it gives exceptions with the latest jquery. –  Felix Aug 8 '12 at 15:08
    
It's a pretty handy plugin btw, totally worth reanimating: picasaweb.google.com/lh/photo/… –  Felix Aug 8 '12 at 15:15
    
I made a quick run-through of the code and updated a few compatibility issues, here it is untested: pastebin.com/sYXWF4Su –  Kevin B Aug 8 '12 at 15:21
    
Thanks, I'll try to check... –  Felix Aug 8 '12 at 15:28
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You could use the children method instead:

var $track = $container.children('.jScrollPaneTrack');

The jQuery docs for the child selector state:

The $("> elem", context) selector will be deprecated in a future release. Its usage is thus discouraged in lieu of using alternative selectors.

However, it hasn't been deprecated yet, so it should still work for you.

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