Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

The following line gives me a serious headache:

listView1.Items.Insert(0, new ListViewItem("Test", listView1.Groups[0]));

All I want to do is insert an item into a list view. The listview is in detailed mode with groups enabled. The inserted item should go into the first group at index 0. But what happens is that the item is always added as the LAST item in the group. As if the first parameter of Insert(...) had no effect...

Anything I'm missing here?

BTW: Sorting is disabled on the listview!

share|improve this question
    
I think this post also can help:- stackoverflow.com/questions/473148/… – Pranav Oct 27 '11 at 8:51

You can try:

ListViewItem item = new ListViewItem("Test");
this.listView1.Items.Insert(0, item);
this.listView1.Groups[0].Items.Insert(0, item);

A detailed discussion can be found here.

This example adds three groups to a listview and adds items at the first position of the groups:

for (int groupIndex = 0; groupIndex < 3; ++groupIndex) {
   this.listView1.Groups.Add("GroupKey" + groupIndex, "Test" + groupIndex);

   for (int index = 0; index < 5; ++index) {
      ListViewItem item = new ListViewItem("Test " + groupIndex + "/" + index,
                                           this.listView1.Groups[groupIndex]);
      this.listView1.Items.Insert(0, item);
      this.listView1.Groups[groupIndex].Items.Insert(0, item);
    }
 }

 for (int groupIndex = 2; groupIndex >= 0; --groupIndex) {
    for (int index = 0; index < 5; ++index) {
      ListViewItem item = new ListViewItem("Test2 " + groupIndex + "/" + index,
                                           this.listView1.Groups[groupIndex]);
      this.listView1.Items.Insert(0, item);
      this.listView1.Groups[groupIndex].Items.Insert(0, item);
   }
 }

This is the result: enter image description here

share|improve this answer
    
Sorry, i forget the line this.listView1.Items.Insert(0, item); I added an example. – H-Man2 Oct 27 '11 at 9:25
    
I tried your example code, but it gives me a different result than your screenshot. Here Test2 is always inserted AFTER Test1. Hu!? – Boris Oct 27 '11 at 10:54
    
I run this example in Visual Studio 2010. Maybe MS fixed a bug? – H-Man2 Oct 27 '11 at 12:19
    
Me too, VS2010, .NET 4.0. Did you make some changes to the listview's properties? – Boris Oct 27 '11 at 13:16
    
I only set ViewMode=Details – H-Man2 Oct 27 '11 at 15:04

Some kind of wizardry,

if you add an item to a list view, and assign group G to the item, the item will be displayed out of place.

Now, if you get the group holding the item (G), change its name to some temporary value, then change back to original name, everything will be displayed OK.

So instead of

listView1.Items.Insert(0, new ListViewItem("Test", listView1.Groups[0]));

do

Dim LVI as new ListViewItem("Test")
listView1.Items.Insert(0, LVI)
LVI.Group = listView1.Groups[0]

Dim TempStr as string = LVI.Group.Header
LVI.Group.Header = "whatever"
LVI.Group.Header = TempStr
share|improve this answer

I had this problem also. I'm not using any groups or sorting. Still, if I try to insert at any index, it always show up LAST. I had to create a "sorter" that forces the listview to always use the same order as the Items collection.

class CompareByIndex : IComparer
{
    private readonly ListView _listView;

    public CompareByIndex(ListView listView)
    {
        this._listView = listView;
    }
    public int Compare(object x, object y)
    {
        int i = this._listView.Items.IndexOf((ListViewItem)x);
        int j = this._listView.Items.IndexOf((ListViewItem)y);
        return i - j;
    }
}

and to use it

   this.listView1.ListViewItemSorter = new CompareByIndex(this.listView1);

I wish that I could use a lambda expression instead of a helper class. But I can't figure out how.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.