Earlier quoted context omitted.
Access to ring 0 on a traditional OS is indeed usually "game over". In the case of a unikernel deployed on a hypervisor this is not the case, since there is not much else in ring 0 that you wouldn't already have access to from ring 3. Conceptually you can think of the hypervisor as "kernel space" and anything inside the unikernel as "userspace". There are advantages to running the unikernel solely in ring 3 (eg. immu…
I still see it as worse than a normal application being compromised. When Ring 0 is compromised, there is no alert or anything to protect the app from compromise. If there is an exploit, it's game over. However, in Ring 3 and a normal kernel, you get various protections that allow the kernel to recognize some attacks and shutdown the application immediately or even shutdown the kernel. This prevents a compromised app…
I disagree. There's no reason such mitigations (not sure what exactly you're referring to) can't be implemented by the monitor process (ukvm in the Solo5/ukvm model).
I'd also argue that a normal kernel does not do any integrity checks on the code running in a user process, so the model is exactly the same.
> Even worse, the attacker could use it as leverage to infect other unikernel based instances of the app to gain some permanence against restarts by simply reinfecting when an instance goes down.
For that they'd need to break out of the virtual machine and into the hypervisor / monitor. Which is by no means impossible, but with careful design of unikernel-specific monitors can be much reduced. Of course, I'm by no means suggesting you should back your unikernels with a monitor along the lines of QEMU :-)