Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Can someone help me with this:

I have form 1 and form 2

in form1 1 :use form2.
in form1 put a button with code Form2.Showmodal;
form2 is made invisible
form2 has one button:
  • form2.close = works but does not close just hides the form. -form2.free - either access violation or closes and the form1 is frozen (taskmngr to kill it)
  • Form2. release - acccess viololation or closes..if I click the open button on form1 to reopen the form it give access violation..
  • Form2.close + onClose action :=cafree; - access violation..
  • Form2.closemodal - has no effect..

how can I dispose and reuse form2 which is shown as modal from form1 ?

thanks a bunch..it has to be something simple Im overlooking.

s

share|improve this question
    
Without seeing what kind of code you have in Form2 (and Form1 for that matter), it's difficult to understand what the issue might be. –  Jerry Dodge Jan 3 '13 at 5:05
add comment

2 Answers 2

form2.close = works but does not close just hides the form.

Yes, it does close the form. That is what the default behavior of a closed form is - to hide itself. In the case of a modal form, Close() merely set's the form's ModalResult to a non-zero value, which causes ShowModal() to exit and close/hide the form.

form2.free - either access violation or closes and the form1 is frozen (taskmngr to kill it)

It is not safe to Free() a form from inside of an event handler belonging to the same form. The VCL still needs to access the form object after the event handler exits. To safely free the form, you have to use Release() instead, which signals the form to automatically free itself at a later time when it is safe to do so.

Form2. release - acccess viololation or closes..if I click the open button on form1 to reopen the form it give access violation..

The only way Release() can cause an AV is if you are calling it using an invalid form pointer. If re-opening a form causes an AV, then you have some serious bugs in your code.

Form2.close + onClose action :=cafree; - access violation..

caFree causes the form to call Release() on itself. See above.

Form2.closemodal - has no effect..

You are not supposed to call CloseModal() directly. Use Close() or set the ModalResult instead.

share|improve this answer
add comment

First, remove Form 2 from auto-creating.

Project > Options > Forms 
Remove Form 2 from "Auto-create forms"

This makes sure that this form is not automatically created.

When you create an instance of it, do not refer to it by its name (such as Form2). Instead, create a temporary variable. If you want to show it in the modal state, do it something like this:

procedure Button1Click(Sender: TObject);
var
  F: TForm2;
begin
  F:= TForm2.Create(nil);
  try
    F.ShowModal;
  finally
    F.Free;
  end;
end;

Don't refer to your form by any name you may have given it, such as Form2. If you instantiate it as another variable as demonstrated above (with F), then make sure all calls you make to it are through this variable. In fact, as long as you remove this form from the auto-created forms, you may completely remove the declaration to this form:

var
  Form2: TForm2;

If you want it to show in a non-modal state, while the main form is still accessible, it has to be done quite differently. Let me know if that's what you need, and I'll adjust my answer.

share|improve this answer
    
Ok I put the above code in the button in form1 to open form2..in form2 button i put Form2.close; that gave access violation again... –  Sardukar Jan 3 '13 at 4:23
    
Don't call close, the code above is all you need to show the form in a modal state. –  Jerry Dodge Jan 3 '13 at 4:25
    
o ok I get it just using the borderIcon..but can it be done with a Tbutton ? –  Sardukar Jan 3 '13 at 4:37
2  
Set the ModalResult of the buttons to non-zero values. Or use the button OnClick events to set the ModalResult` of the modal TForm. Either approach will cause ShowModal() to exit. –  Remy Lebeau Jan 3 '13 at 5:03
1  
@Sardukar - Please accept the answer that solved your problem. –  Sertac Akyuz Jan 3 '13 at 16:37
show 3 more comments

Your Answer

 
discard

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.