53

I'm having an issue with a COM based client-server setup. The COM server is written in C# (.NET 4.0) and runs as a (registered) local server.

Depending on which application connects to the server, other clients will receive a Server execution failed (Exception from HRESULT: 0x80080005 (CO_E_SERVER_EXEC_FAILURE)

The underlying issue is explained here (in the section COM is integrity aware). The way I understand it, it is being caused by the fact that an elevated application creates the server with a higher integrity level. When another non-elevated application then connects, it is not allowed to connect to the same instance. The same happens when a non-elevated application creates the process, followed an elevated application connecting.

I've tried to implement the solution described on the page: modifying the registry to set a security descriptor that should allow all clients to connect. There is a code sample in C++, but this does effectively the same thing in .NET:

// Security Descriptor with NO_EXECUTE_UP
var sd = new RawSecurityDescriptor("O:BAG:BAD:(A;;0xb;;;WD)S:(ML;;NX;;;LW)");
byte[] securityDescriptor = new Byte[sd.BinaryLength];
sd.GetBinaryForm(securityDescriptor, 0);

RegistryKey key = Registry.ClassesRoot.OpenSubKey("AppID\\{APP-ID-GUID}", true);
if (key == null)
{
    key = Registry.ClassesRoot.CreateSubKey("AppID\\{APP-ID-GUID}");
}

using (key)
{
    key.SetValue("LaunchPermission", securityDescriptor, RegistryValueKind.Binary);
}

However, this does not have the desired effect. When the second client tries to create an instance of the object in question, Windows tries to launch a separate instance of my COM Server, but the server prevents two instances from running as the same user. Given the permissions I've set, I would not expect a second instance to launch in the first place.

Since one of the client applications is running in Medium IL and the other in High IL, I also experimented with variants on the mandatory label, like:

O:BAG:BAD:(A;;0xb;;;WD)S:(ML;;NX;;;ME)
O:BAG:BAD:(A;;0xb;;;WD)S:(ML;;NX;;;LW)(ML;;NX;;;ME)(ML;;NX;;;HI)

I've also tried setting the ROTFlags registry key to 0x1 (ROTFLAGS_ALLOWANYCLIENT) as suggested on the page, still no change in behavior.

I've established that the LaunchPermission registry value is being used in some way. I cannot discover where it's being read using Process Monitor, but when I use the dcomcnfg.exe tool to set the same key, I can force the server to fail loading by denying launch permissions.

I would like to point out that my server process does not need elevation. How do I make both elevated and non-elevated processes capable of connecting to a single server instance?

  • 2
    Is the server registered in the registry? – tyranid Aug 21 '12 at 18:42
  • 1
    @tyranid: Yes, and it has an AppID. I've updated my code to write a registry key instead, because the MSDN solution mentions using this solution. – Thorarin Aug 23 '12 at 12:28
  • 1
    I guess it is a stupid question but have you tried setting AccessPermission? msdn.microsoft.com/en-us/library/windows/desktop/… – tyranid Aug 23 '12 at 21:21
  • 5
    (outside the box question) Is COM a requirement? I've had similar situations before. I chickened-out and made a wrapper (COM+/WCF) and called the wrapper. – tgolisch Aug 29 '12 at 16:52
  • 3
    "The same happens when a non-elevated application creates the process, followed [by] an elevated application connecting." This scenario shouldn't fall foul of integrity control... are you sure there isn't some other issue in play? How does the app fail in this scenario? – Chris Dickson Sep 9 '12 at 15:19
1

According to Windows Vista Security Model Analysis you will need to use shared objects such as a named pipe to go between the different IL. Also, the shared object should have an IL equivalent to your lowest IL being used.

0

you have to Set Debug option to Any cpu in VS.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.