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Seems like a Noobie question, but I can't seem to prevent my form from checking one of the Radio Buttons in my Group Box:

enter image description here

As shown in the designer, no Radio Buttons are checked there.

Below is just about all of the code for this simple form. Nothing calls for a Radio Buttons to be checked here or in the form's designer.

Q: Is there a way to prevent any Radio Button from being checked when the form loads?

public ValueTypeSelector() {
  InitializeComponent();
  radioButton1.Checked = false;
  radioButton2.Checked = false;
  radioButton3.Checked = false;
  radioButton4.Checked = false;
  radioButton5.Checked = false;
  radioButton6.Checked = false;
  button1.Enabled = false;
  button1.Click += clickEvent;
  button2.Click += clickEvent;
  radioButton1.Click += clickEvent;
  radioButton2.Click += clickEvent;
  radioButton3.Click += clickEvent;
  radioButton4.Click += clickEvent;
  radioButton5.Click += clickEvent;
  radioButton6.Click += clickEvent;
}

void OnShow(object sender, EventArgs e) {
  foreach (RadioButton rad in Controls) {
    if (rad.Checked) {
      Console.WriteLine("WTF?");
    }
  }
}

void clickEvent(object sender, EventArgs e) {
  RadioButton rad = sender as RadioButton;
  if (rad != null) {
    if (rad.Checked) {
      if (rad == radioButton1) {
        DataType = TableDataType.Boolean; // <= HERE IS THE PROBLEM! FIRES ON FORM LOAD
      } else if (rad == radioButton2) {
        DataType = TableDataType.Character;
      } else if (rad == radioButton3) {
        DataType = TableDataType.DateTime;
      } else if (rad == radioButton4) {
        DataType = TableDataType.Decimal;
      } else if (rad == radioButton5) {
        DataType = TableDataType.Integer;
      } else if (rad == radioButton6) {
        DataType = TableDataType.String;
      } else {
        return;
      }
      button1.Enabled = true;
    }
  } else if (sender == button1) {
    DialogResult = DialogResult.OK;
    Close();
  } else if (sender == button2) {
    DialogResult = DialogResult.Cancel;
    Close();
  }
}

UPDATE: The problem is that radioButton1 gets checked when the form is shown:

      if (rad == radioButton1) {
        DataType = TableDataType.Boolean; // <= HERE IS THE PROBLEM! FIRES ON FORM LOAD
      } else if (rad == radioButton2) {
share|improve this question
    
add some radio button, and make it invisible:) –  Jack Malkovich Jul 19 '11 at 17:33
    
LOL. I'd rather take control of my code! –  jp2code Jul 19 '11 at 17:34

3 Answers 3

up vote 5 down vote accepted

Make sure your radiobuttons are NOT the first tabindex = 0 controls. Make the OK button tabindex=0, followed by the radiobuttons.

share|improve this answer
    
Ah-ha! I knew it had to be something simple like that! Thanks. –  jp2code Jul 19 '11 at 17:42
1  
@jp2code or turn the AutoCheck properties of the radiobuttons to false in the designer, and then turn them to true in the constructor. That seemed to work, too. –  LarsTech Jul 19 '11 at 17:46
1  
There's even simpler solution to it. Check the comment in my answer area. –  SaravananArumugam Jul 19 '11 at 17:51

In the design mode, you'll find the AutoCheck property set to true. Just turn it to false. It won't be checked untill you select it manually during the runtime.

share|improve this answer
1  
I am trying to edit my content, but it won't let me. Keeping the AutoDrop and AutoCheck to true would do what you want. –  SaravananArumugam Jul 19 '11 at 17:51
    
I suppose that would work. By doing so, I'd have to explicitly check the Radio Button in code in the clickEvent handler, right? –  jp2code Jul 19 '11 at 18:04
1  
Yes. You can check the Radio Button through code or through the UI. You can handle the change in CheckedChanged event. –  SaravananArumugam Jul 19 '11 at 18:16
    
Thanks! I may have used LarsTech's response as the answer, but I've given you 4 distinct upvotes in this thread. –  jp2code Jul 19 '11 at 18:33
    
That's not a problem. I am glad that I could help. –  SaravananArumugam Jul 19 '11 at 18:35

Set the checked state to false after form load. Put this in Shown event and see if it working.

share|improve this answer
    
That's a brute force technique I was trying to avoid. LarsTech's original answer was the fastest to do what I needed, though SaravananArumugam's was probably more correct from the Coder's view. –  jp2code Jul 19 '11 at 18:08

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