7

I was working on an inventory software and suddenly came to know that I need some main form through which I should open all the other forms, so I created one named frmMainPanel and use a menu strip to link it to another I am successful in linking them but they are opening outside the main form, I use following code to link them

Linking frmSaleInvoice form using:

frmSaleInvoice childForm = new frmSaleInvoice();
cs.show()

now i realize i should make them child to the main form so i tried that using following code:

frmSaleInvoice childForm = new frmSaleInvoice();

childForm.MdiParent = this;
childForm.Show();

but it says **" Form that was specified to be the MdiParent for this form is not an MdiContainer."**

can any one help me out wher i am mistaking and how could i make a form named frmSaleInvoice to child of other form named frmMainPanel

19

The Mdi parent must have it's IsMdiContainer property set to True. You can set this property at design time in your frmMainPanel form.

  • thanks worked out for me :) – Jack Frost Mar 24 '14 at 19:59
  • I already set the IsMdiContainer property to true, but the error is still persisting. – Pratikk Feb 17 '16 at 13:25
  • @Pratikk I feel silly for asking but you did set IsMdiContainer to true for the PARENT form? – Crono Feb 17 '16 at 13:45
  • What if the Main Form isMDIContainer and still thrown error? Note: My MainForm Loads Forms from FormManager Class – 123 Mar 24 '18 at 18:24
8

You should set the IsMdiContainer = true for the parent form.

  • thanks worked out for me :) – Jack Frost Mar 24 '14 at 19:59
  • 4
    Please mark the @Crono's answer as accepted, he was 2 seconds faster this time. :) – Dmitry Mar 24 '14 at 20:01
  • 2
    @Dmitry +1 for being a sir. – Crono Mar 24 '14 at 20:16
0

Just write IsMdiContainer = true; in your code.

Form2 fL = new Form2();
fL.MdiParent = this;
fL.Show();

Form2 is the name of the form that you want to show.

-2

you don't have to set the childForm to true, you can try this:

childForm.MdiParent = (name of your mdiparent form).ActiveForm;
childForm.Show();

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