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I have two (or more) ListView's that are side by side. I need them to act as one so the selected index of each is always the same.

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2 Answers 2

up vote 1 down vote accepted

This should work :), maybe.

var lv1 = ListView {
}
var lv2 = ListView {
}

var onSync = false;    

var sel1 = bind lv1.selectedIndex on replace {
    if (not onSync) {
        onSync = true;
        lv2.select(sel1);
        onSync = false;
    }
}
var sel2 = bind lv2.selectedIndex on replace {
    if (not onSync) {
        onSync = true;
        lv1.select(sel2);
        onSync = false;
    }
}
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Interesting, I'll give that a try, thanks for your answer! Another thing however, I've noticed that in JavaFX 1.2 it doesn't appear to be possible to manipulate the scrollbar, so I could potentially select the 100th index, but I wouldn't be able to see it. (To the best of my knowledge.) Thanks! –  ardavis Apr 28 '10 at 12:08
    
This definitely worked, thanks a lot! Only issue is the scrollbar! –  ardavis Apr 28 '10 at 13:44
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"bind with inverse" seems to be an option:

var a;
var b = bind a with inverse;

works only for simple expressions. anything more complex will generate a warning/error.

Except that it isn't because of ListView's selectedIndex is public-read (thaks for the correction).

You will have to do it like this:

var lv1 = ListView {
}
var lv2 = ListView {
}
var sel1 = bind lv1.selectedIndex on replace {
    lv2.select(sel1);
}
var sel2 = bind lv2.selectedIndex on replace {
    lv1.select(sel1);
}

You also may want to add some ifs here and there to avoid extra select() calls.

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1  
How can I set the selectedIndex though? It appears they don't have write access according to the API. So I'm not sure how to implement it. Sorry! Thanks! –  ardavis Apr 23 '10 at 13:44
    
Honza, this is not working. selectedIndex is RO property only. And your next suggestion makes infinite loop. (better said, causes StackOverflowError) –  Rastislav Komara Apr 27 '10 at 11:52
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