1

How to convert IStream to TStreamAdapter on Delphi 7?

On Delphi XE2 I may write:

var
  aStream: IStream;
  aStreamAdapter: TStreamAdapter;
begin
  ...
  aStreamAdapter := aStream as TStreamAdapter;
  ...
end;

But Delphi 7 writes:

Error: Operator not applicable to this operand type
  • 3
    The only possible reason I can think of for wanting to do this is to get access to the TStreamAdapter.Stream property, because you previously wrapped a TStream object, and now you want it back. If that's what you're doing, then you should have just stored the TStream reference somewhere before, and then you wouldn't have to go digging through the IStream interface to recover it. The right way to get a TStream reference from an IStream is to create a TOleStream. – Rob Kennedy Jan 22 '13 at 19:40
  • Not duplicate because I have exactly interface and exactly class. There is another good way to solve the problem. – Dmitry Jan 23 '13 at 9:09
3

That code works because of a new feature introduced in D2010, namely the ability to recover a reference to the object that implements an interface. Note though that if the IStream is implemented by something other than your Delphi code, then the cast will fail.

If you need to refer to the implementing object in older versions of Delphi then you will need to use one of the various hacks to recover it. For example:

However, you should not need to get back to the implementing object. The fact that you do want to is a very strong indication that your design is wrong.

1

The unit AxCtrls has an TOleStream object to do just that.

var
  aStream: IStream;
  bStream: TStream;
begin
  bStream := TOleStream.Create(aStream);
  try
    //
  finally
    bStream.Free;
  end;
end;
  • 1
    No, that's not it. The code in the question recovers the object reference for the object that implements the interface. – David Heffernan Jan 23 '13 at 11:44
  • Having said that, the other answer suggests that the intended question was "how do I copy from an IStream to a TStream?" This is the answer to that. – David Heffernan Jan 23 '13 at 13:51
0

You need to use the Create method like

var StreamAdapter:TStreamAdapter;
begin
  StreamAdapter := TStreamAdapter.Create(aStream);
...
-1

Sample code:

var
  aFileStream: TFileStream;
  iStr: TStreamAdapter;
  iRes , iRes1, iRes2: Largeint;
  aStreamStat: TStatStg;
  aStreamContent: IStream;
begin
  aFileStream := TFileStream.Create('<...>', fmCreate);
  try
    aStreamContent := <...> as IStream;
    aStreamContent.Seek(0, 0, iRes);
    iStr := TStreamAdapter.Create(aFileStream, soReference);
    aStreamContent.Stat(aStreamStat, 1);
    aStreamContent.CopyTo(iStr, aStreamStat.cbSize , iRes1, iRes2);
  finally
    aFileStream.Free;
  end;
end;
  • You've misread the question. The post wants to get back to the object that implements the interface, not convert to one. See @David's answer. – Ken White Jan 23 '13 at 12:27
  • 3
    @Ken Ironic considering this answer comes from the person that asked the question! Perhaps this is the solution to Altaveron's actual problem, but it's not the answer to the question that was asked. – David Heffernan Jan 23 '13 at 12:29
  • @David: Yeah, didn't catch the poster name. Very strange. ;-) Perhaps Altaveron needs to work on writing better questions? – Ken White Jan 23 '13 at 12:33
  • This code also plays fast and loose with the TStreamAdapter instance that is created. The appropriate approach is to declare iStr to be IStream. – David Heffernan Jan 23 '13 at 12:46
  • Thanks for the help. But there is working solution without hacking. iStr is TStreamAdapter with content of IStream. I am not sure if I need to call iStr.Free. – Dmitry Jan 23 '13 at 16:36

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