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I have two forms; one called 'win' and the other called 'loss'. There is a button on 'win' form which displays the 'loss' form. When this button is clicked both forms are visible. When I close the 'loss' form and then click the button on the 'win' form again I get the following exception:

An unhandled exception has occured: Unable to access a disposed object ..object :form

Please could someone point me in the right direction so I can resolve this?

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Are yo u sure u are creating a new instance of the Form every time the buttn is clicked... – Shekhar_Pro Jan 24 '11 at 13:14
definately need to know more of the code – Daniel Casserly Jan 24 '11 at 13:22
What are you trying to achieve? 'win' form should retrieve some data from 'loss' form? – Sergey Berezovskiy Jan 24 '11 at 13:39
I wana 2 call loss form from win form as many times as we click on dat btn.. – KFC Jan 24 '11 at 13:41
Call == create and show new loss form, OR you want to call some functionality on one loss form? BTW win form should be accessible (e.g. receive user input)? – Sergey Berezovskiy Jan 24 '11 at 13:42

3 Answers 3

It is because your 'loss' form is already closed and has been disposed, so it cannot be used anymore. You need to create a new instance of the form, like so (don't know how exactly your code looks):

this.loss = new LossForm(); 
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And what if I click 5 times that button? It will create 'loss' form 5 times. – Sergey Berezovskiy Jan 24 '11 at 13:29
public void btn_Log(Object sender,System.EventArgs e) { Form loss = new Form(); loss.Text = "Advance View " ; loss.Controls.Add(panC); loss.Size=new Size(320,330); fl.Show(); } bLog.Click+=new EventHandler(btn_Log);//btn calls loss form...all these fun are in class win :Form ..plz rly nw – KFC Jan 24 '11 at 13:35
@Mukul if you add a control to your form on creation, make sure you have also created that control newly. The control 'panC' will get disposed along with the 'loss' form, so you'll need a new panC control for each loss form. – Botz3000 Jan 24 '11 at 13:44
yah,i panC control is dere in class win :Form ...SO hw many times i hav 2 create it ? becz we cant predict hw many times the btn is clicked – KFC Jan 24 '11 at 13:50
you have to create it every time you create a loss form. because when the loss form is closed, panC will get disposed, and will not be useable anymore. – Botz3000 Jan 24 '11 at 13:54

You can verify IsDisposed property of form, before referencing it.

E.g. button click handler on 'win' form:

if (loss.IsDisposed)

// do stuff with loss form

Update: I think it's better not to share control between forms.

  1. You can run 'loss' form as Dialog. And read all needed properties after dialog closed.
  2. You can subscribe to 'loss' form events and process them in 'win' form.
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Of course, that won't open the loss form a second time. It just prevents the exception from being thrown. – Cody Gray Jan 24 '11 at 13:25
I wana 2 call loss form from win form as many times as we click on dat btn. – KFC Jan 24 '11 at 13:44
Why don't just put panC control to 'loss' form in design time? It will be created and added to loss.Controls automatically. Sharing control between forms is not very good idea. You can pass data via events of properties of form. – Sergey Berezovskiy Jan 24 '11 at 13:58

It's not a very good model your going for but you could hook into the formClosing event, cancel it and then hide the form instead. That means the form wont be automatically disposed and you could call show again.

Put some time aside to research MVC architecture - it looks complicated at first, but it really does help.

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