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Editorial Team
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Asked: 2026-05-14T15:50:57+00:00

I have the code: private void Button1_Click (object sender, EventArgs e) ( Form2 f2

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I have the code:

private void Button1_Click (object sender, EventArgs e)
(
    Form2 f2 = new Form2 ();
    f2.Show ();
)

how to make so that Form2 when you click on Button1 not opened for the second time, if it is open?

sorry for bad english

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1 Answer

  1. Editorial Team

    You have to make sure you only have 1 instance of Form2 created. One way to do this is to move the object declaration and instantiation to a private variable and in your click event handler simply call the Show() method:

    private Form2 f2 = new Form2();
private void Button1_Click (object sender, EventArgs e)
(
    if(f2 == null) 
    {
      f2 = new Form2();
    }
    f2.Show ();
)
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