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I use this code to test pressing 3 letters at the same time but IF jump outside case!

....
private
FValidKeyCombo: boolean
....

procedure MyForm.FormKeyDown(Sender: TObject; var Key: Word; Shift: TShiftState);
begin
  if FValidKeyCombo and (Shift = [ssAlt]) then
    case Key of
      Ord('N'): //New
        if (GetKeyState(Ord('C')) and $80) = $80 then 
          btn1.OnClick(nil)

        else if (GetKeyState(Ord('T')) and $80) = $80 then 
          btn2.OnClick(nil)

        else if (GetKeyState(Ord('Q')) and $80) = $80 then 
          btn3.OnClick(nil)

        else if (GetKeyState(Ord('W')) and $80) = $80 then 
          btn3.OnClick(nil);

     Ord('E'): //New
        if (GetKeyState(Ord('C')) and $80) = $80 then 
          btn1.OnClick(nil)

        else if (GetKeyState(Ord('T')) and $80) = $80 then //<-- after this line if jump to line 30!! why ???
          btn2.OnClick(nil)

        else if (GetKeyState(Ord('Q')) and $80) = $80 then 
          btn3.OnClick(nil)

        else if (GetKeyState(Ord('W')) and $80) = $80 then 
          btn3.OnClick(nil);

  end; //case Key of

{This is line 30}  FValidKeyCombo := (Shift = [ssAlt]) and (Key in [Ord('C'), Ord('T'), Ord('Q'), Ord('W')]);
end;

procedure MyForm.FormKeyUp(Sender: TObject; var Key: Word; Shift: TShiftState);
begin
  FValidKeyCombo := False;
end;

as commented in code If jump to the line 30 that set FValidKeyCombo value this happen when I press on Alt+W+E !! why ??

share|improve this question
3  
It's the next line that's after the case.., naturally it runs. Exit from the 'if' if you don't like it. 'else if .... then begin btnclick exit end'. –  Sertac Akyuz Mar 2 '13 at 1:46
    
What are you trying to accomplish? –  jachguate Mar 2 '13 at 2:11
    
And what you expect to happen? –  jachguate Mar 2 '13 at 2:13
1  
Works fine on all versions of Delphi. I expect you are running different code. You've copied it incorrectly. For a start you should be able to cut this down to a single short complete compilable sample. Then you can paste it into the question and we can be 100% sure we are all running the same code. My question here stackoverflow.com/questions/13643698/… shows how to do that –  David Heffernan Mar 2 '13 at 22:08
1  
You would be better using compound accelerators like Office. They work on all keyboards. –  David Heffernan Mar 3 '13 at 8:25

1 Answer 1

Your code works OK.

My guess is you may have by accident introduced a ; in between the btn2.OnClick() and the next else statement, terminating your if statement. It Compiles because the case statement also can have a else part and you're already at the last value of the case.

For this, I always surround complex code in a begin/end pair, it cost nothing, but adds a lot of clarity to the code.

For example, I changed your code to this:

procedure TForm1.FormKeyDown(Sender: TObject; var Key: Word;
  Shift: TShiftState);
begin
  if FValidKeyCombo and (Shift = [ssAlt]) then
  begin
    case Key of
      Ord('N'): //New
        begin
          if (GetKeyState(Ord('C')) and $80) = $80 then
            btn1.OnClick(nil)
          else if (GetKeyState(Ord('T')) and $80) = $80 then
            btn2.OnClick(nil)
          else if (GetKeyState(Ord('Q')) and $80) = $80 then
            btn3.OnClick(nil)
          else if (GetKeyState(Ord('W')) and $80) = $80 then
            btn3.OnClick(nil);
        end;
     Ord('E'): //New
       begin
        if (GetKeyState(Ord('C')) and $80) = $80 then
          btn1.OnClick(nil)
        else if (GetKeyState(Ord('T')) and $80) = $80 then
          btn2.OnClick(nil) //a ; here now produces a compiler error
        else if (GetKeyState(Ord('Q')) and $80) = $80 then
          btn3.OnClick(nil)
        else if (GetKeyState(Ord('W')) and $80) = $80 then
          btn3.OnClick(nil);
       end;
    end; //case Key of
  end;
  FValidKeyCombo := (Shift = [ssAlt]) and (Key in [Ord('C'), Ord('T'), Ord('Q'), Ord('W')]);
end;
share|improve this answer
    
thanks my friend but no extra ; and I tried begin...end same result !! –  Wel Mar 2 '13 at 3:34
    
This is the same code as in the question. –  David Heffernan Mar 2 '13 at 15:44
    
@David, I was guessing, the code is in fact the same, and my answer states why. –  jachguate Mar 3 '13 at 1:20

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