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I have a ListView with ItemActivate attached to it. Normally I would just use listview.SelectedItems[0] to get the ListViewItem that triggred the event.

Now I want to subscribe to SelectedIndexChanged as well so the items can get activated as soon as they are being selected.

Unfortunately the sender and e of both these events doesn't return the item which triggred the event (as far as I know!).

A workaround would be to have a field like lvSelectedItem and store the active item in it...but how can I do this a better way? Somehow that I can get the selected item directly from sender or eventargs ?

Here is my code:

    private void lvPins_ItemActivate(object sender, EventArgs e)
    {
        var item = lvPins.SelectedItems[0];
        var pin = item.Tag as Pin;
        OnPinActivated(pin);
    }

    private void lvPins_SelectedIndexChanged(object sender, System.EventArgs e)
    {
        var item = lvPins.SelectedItems[0]; //this always cause argumentoutofrange exceotion
        var pin = item.Tag as Pin;
        OnPinActivated(pin);
    }
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look at my answer update –  eyossi Jul 18 '12 at 21:40

1 Answer 1

up vote 2 down vote accepted

From MSDN documentation of SelectedIndexChanged:

To determine which items are selected in the ListView control, use the SelectedItems property to access the ListView.SelectedListViewItemCollection

You can't access the new selected item / items from the event arguments.

If you don't want to keep a reference to the ListView you can use the sender for accessing it:

 ((ListView)sender).SelectedItems

UPDATE ACCORDING TO THE POSTED CODE:

I think that the SelectedIndexChanged is fired twice:

  • When removing the old selected items to SelectedItems list (and then you get an empty list)
  • When adding the new selected items to Selecteditems list (the second time you will get the the selected item then)

try changing your code to that:

if (lvPins.SelectedItems.Count > 0)
{
    var item = lvPins.SelectedItems[0]; //the second time you will get the selected item here
    var pin = item.Tag as Pin;
    OnPinActivated(pin);
}
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I added my code maybe you can have a look –  Saeid Yazdani Jul 18 '12 at 21:30

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