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I have two forms in my application. In my Form1 I have a list view having some items. When I double click on a row, I should get a pop-up window allowing me edit the row values. For this I used doubleclick event. Now for the pop-up window I created new form- Form2. I have made the listview as internal in Form1, so as to access the selected rows values in my form2. In form2 load I am retrieving the values of selected row to display in textboxes but this gives me error. This is my code:

   //this is in form1
   private void bufferedListView1_DoubleClick(object sender, EventArgs e)
    {
        form2 obj = new form2();
        obj.ShowDialog();
    }

   //in form2
   Form1 o = new Form1();
   private void form2_Load(object sender, EventArgs e)
    {
        txt_editname.Text = o.bufferedListView1.SelectedItems[0].SubItems[0].Text;
        txt_editno.Text = o.bufferedListView1.SelectedItems[0].SubItems[1].Text;
    }

The error that I get is: InvalidArgument=Value of '0' is not valid for 'index'. Parameter name: index

Where am I wrong?

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oh why is that so? Am I not just creating an object for form1? –  Cdeez Aug 5 '12 at 6:29
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3 Answers

up vote 2 down vote accepted

Pass needed data in constructor of form2

public form2(string text1, string text2)
{
   //work with values
}

And change calling code to this:

private void bufferedListView1_DoubleClick(object sender, EventArgs e)
{
    form2 obj = new form2(bufferedListView1.SelectedItems[0].SubItems[0].Text,
       bufferedListView1.SelectedItems[0].SubItems[1].Text);
    obj.ShowDialog();
}
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I have a new problem now. I used your way and that worked. But problem is the next time I click a row the error is repeated. Its because I am not discarding the object everytime. So I added this: obj = null; GC.Collect(); But still there is a typical problem, after few clicks, the error is again repeated. Why is it happening? –  Cdeez Aug 5 '12 at 7:19
    
When a form is displayed as a modal dialog box, clicking the Close button (the button with an X at the upper-right corner of the form) causes the form to be hidden Because a form displayed as a dialog box is hidden instead of closed, you must call the Dispose method of the form when the form is no longer needed by your application. See remarks there msdn.microsoft.com/en-us/library/c7ykbedk.aspx –  dantix Aug 5 '12 at 7:24
    
Yes I did give a button to cancel and wrote this.Dispose(); in it. I click in listview, form2 opens then I close using cancel button. I do it 3-4 times then I get the error –  Cdeez Aug 5 '12 at 7:33
1  
This is not error related with forms, it's saying to you that you are trying to access some array out of its bounds. form2 obj = new form2(bufferedListView1.SelectedItems[0].SubItems[0].Text, bufferedListView1.SelectedItems[0].SubItems[1].Text); This code containing direct calls to SelectedItems at index 0, but if there is no selected items this exception will be raised. –  dantix Aug 5 '12 at 7:44
1  
GOTCHA... since my timer is continuously clearing and adding data to listview, that is making the selected item not selected. So when I double click I am stopping the timer and again after updating or cancelling in form2 im starting the timer. Solved the problem. Thanks a lot @Dantix –  Cdeez Aug 5 '12 at 7:53
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Form1 o = Application.OpenForms["Form1"] as Form1;
private void form2_Load(object sender, EventArgs e)
{
    txt_editname.Text = o.bufferedListView1.SelectedItems[0].SubItems[0].Text;
    txt_editno.Text = o.bufferedListView1.SelectedItems[0].SubItems[1].Text;
}

you should retrieve the instance of Form1 which is already created, not a new instance.

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Your code should be like this:

    //this is in form1
    private void bufferedListView1_DoubleClick(object sender, EventArgs e)
    {
        form2 obj = new form2
                        {
                            Name = o.bufferedListView1.SelectedItems[0].SubItems[0].Text,
                            No = o.bufferedListView1.SelectedItems[0].SubItems[1].Text,
                        };
        obj.ShowDialog();
    }

    //in form2
    public String Name;
    public String No;
    Form1 o = new Form1();
    private void form2_Load(object sender, EventArgs e)
    {
        txt_editname.Text = Name;
        txt_editno.Text = No;
    }
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