Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

VB2010 I have created a DataTable manually so it does not come from a database. I have assigned it to a combobox and it displays my column of data. If I change the DataTable do I have to re-establish the link?

'assign first table
dt = GetFirstTable()
cbo.DataSource = dt
cbo.DisplayMember = "Time"
cbo.ValueMember = "Time"

'print out items in combobox

'assign second table
dt = GetSecondTable()
'cbo.DataSource = dt 'do i have to re-connect here?

'print out items in combobox

It seems if I do not re-establish the link I get the same items. I though since the cbo was already linked to the dt variable i didn't need to re-link it each time. Is that how that works or am I doing something wrong here?

share|improve this question

1 Answer 1

up vote 4 down vote accepted

When you assign cbo.DataSource = dt, and you then recreate dt, cbo.DataSource will keep pointing to the old table. This is pure pointer logic working here, same principle applies to all .NET code. It does not mean anything that you are re-using the same variable. You could have instead created dt2 and used that, behavior would be the same. So yes, if you recreate the DataTable, you need to reassign DataSource again. However, if you change the original dt, i.e. add rows, those will appear, so you will not need to reassign DataSource. Here is a code sample, to illustrate the approach:

Dim _dt As DataTable

Private Sub Form1_Load(sender As System.Object, e As System.EventArgs) Handles MyBase.Load
  _dt = New DataTable
  With _dt.Columns
  End With
  With ComboBox1
    .DisplayMember = "value"
    .ValueMember = "key"
    .DataSource = _dt
  End With
End Sub

Private Sub Button1_Click(sender As System.Object, e As System.EventArgs) Handles Button1.Click
  _dt.Rows.Add({"item_key", "item_value"})
End Sub
share|improve this answer
I see. I think I had a different idea of how the source and table worked. I re-link every time I change the source and its working. thanks. – sinDizzy Nov 9 '12 at 16:27

Your Answer


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.