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  • DataGridView - Placed in Form - 2
  • TextBox1 - Placed in Form - 1

I want to access Data Grid View Row and Column value in Form - 1 and display in textbox.

I'm writing this code below:

Form2 form2 = new Form2();
DataGridView data = new DataGridView();
data = form2.qualitySetupDataGridView;

MessageBox.Show(data.Rows[0].Cells[1].Value.ToString());

Error Message: Index was out of range. Must be non-negative and less than the size of the collection. Parameter name: index

Note: DataGridView Modifiers is set to public. I have 3-4 Records in the DataGridView that is placed in form-2.

  • Is that code in the Form1 source? Does it mean you are instantiating Form2 from Form1? – JCabello Feb 19 '15 at 11:08
  • You are making an new instance of Form2 in your Form1, thus having an empty DatagridView. You should pass the current instance of DatagridView on your Form1 when you open it in Form2 – apomene Feb 19 '15 at 11:16
  • @JCabello Thats correct. – Fawad Feb 19 '15 at 11:21
  • @apomene: code will be appreciated. I'm thinking form2.qualitySetupDataGridView is doing the job. so its empty datagridview no wonder. – Fawad Feb 19 '15 at 11:22
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You are making an new instance of Form2 in your Form1, thus having an empty DatagridView. You should pass the current instance of DatagridView , e.g:

Form1:

Fawad Edited:

You forgot to create object: this does the job, but it pops up form 2 for a second to get data and then recloses, which isn't perfect but gets the job done.

Form2 f2 = new Form2();
Form2.Show();
Form2.Hide();

Form2 f = Application.OpenForms.OfType<Form2>().ElementAt<Form2>(0); //Get current open Form2
DataGridView data = f.qualitySetupDataGridView;
MessageBox.Show(data.Rows[0].Cells[1].Value.ToString());
  • after writing this code, now I'm getting a different error. System.ArgumentOutOfRangeException: Specified argument was out of range of valid values. Parameter: Index. – Fawad Feb 19 '15 at 11:43
  • is there any open Form2??is there a datagridVIew in Form2 instatinated? – apomene Feb 19 '15 at 11:45
  • just 1 here. this is in form - 1 private void qualitySetupToolStripMenuItem_Click(object sender, EventArgs e) { // Quality Setup Form Goes here. // This updates ComboBox Value with new-Added Data in Quality Setup. new Form2().ShowDialog(); this.qualitySetupTableAdapter.Fill(this.setupsDBDataSet.QualitySetup); this.comboBox1.SelectedIndex = -1; } – Fawad Feb 19 '15 at 11:47
  • I got your point. by doing this Form2 form2 = new Form(); DataGridView data = new DataGrid View; data = form2.qualitySetupDataGridView; I'm creating a new empty form and linking a new empty datagridview. However my debugger is throwing exception at this line: Form2 f = Application.OpenForms.OfType<Form2>().ElementAt<Form2>(0); – Fawad Feb 19 '15 at 11:55
  • Just for your information: I have 3 forms, but form 3 is doing nothing basically just pops up help and displays application information. – Fawad Feb 19 '15 at 12:00

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