2

If I register in the container something like:

container.Register<IShell, ShellViewModel>(Lifestyle.Singleton);

Is there a way to get the same instance using the "implementation type" ShellViewModel?

Example:

container.GetInstance<ShellViewModel>();

The above line returns an instance different from container.GetInstance<IShell>(). How can I make sure the instance is the same for both calls?

I solve it using ResolveUnregisteredType event.

        private void ContainerResolveUnregisteredType(object sender, UnregisteredTypeEventArgs e)
        {
            var producer = container.GetRootRegistrations()
                .FirstOrDefault(r => r.Registration.ImplementationType == e.UnregisteredServiceType);
            if (producer != null && producer.Lifestyle == Lifestyle.Singleton)
            {
                var registration = producer.Lifestyle.CreateRegistration(e.UnregisteredServiceType, producer.GetInstance, container);
                e.Register(registration);
            }
        }

Is it the correct way?

2

You simply register them both as singleton:

container.RegisterSingleton<ShellViewModel>();
container.RegisterSingleton<IShell, ShellViewModel>();

UDPATE

Confirmed working with a simple unit test:

[TestMethod]
public void RegisterSingleton_TwoRegistrationsForTheSameImplementation_ReturnsTheSameInstance()
{
    var container = new Container();

    container.RegisterSingleton<ShellViewModel>();
    container.RegisterSingleton<IShell, ShellViewModel>();

    var shell1 = container.GetInstance<IShell>();
    var shell2 = container.GetInstance<Shell>();

    Assert.AreSame(shell1, shell2);
}

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