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Private Sub Button1_Click(ByVal sender As System.Object, ByVal e As System.EventArgs) Handles Button1.Click

    With OpenFileDialog1
        .FileName = String.Empty
        .InitialDirectory = "C:\"
        .Title = "Open Excel File"
        .Filter = "Excel 97-2003|*.xls|Excel 2007|*.xlsx"
    End With
    Dim result As DialogResult = OpenFileDialog1.ShowDialog()
    If result = Windows.Form.DialogResult.OK Then
        Try
            TextBox1.Text = OpenFileDialog1.FileName
            GetExcelSheetNames(TextBox1.Text)
        Catch ex As Exception
            MsgBox("Error : " & ex.Message)
        End Try
    End If

End Sub
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    Possible SQL injection. Use parameters to prevent this! Also it's important to disposed of your objects. – zaggler Nov 4 '16 at 13:27
  • uh? what's your question and what's your problem? – romulus001 Nov 4 '16 at 13:45
  • gift me tips and trick for passing textbox form login to lable form 1 – indra korneawan14 Nov 4 '16 at 15:01
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Public Class Form1
    Private loginLabel As String

    Public Sub New(ByVal loginParameter As String)
         InitializeComponent()

         Me.loginLabel = loginParameter

    End Sub
End Class

and in your login form:

dim frm as new Form1(label.Text)
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