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Subtitle: Submission to special issue on Verified Information Flow Security
Article type: Research Article
Authors: Guanciale, Roberto; * | Nemati, Hamed | Dam, Mads | Baumann, Christoph
Affiliations: Department of Computer Science, KTH Royal Institute of Technology, Lindstedtsvägen 3, Stockholm, Sweden. E-mails: robertog@kth.se, hnnemati@kth.se, mfd@kth.se, cbaumann@kth.se
Correspondence: [*] Corresponding author. E-mail: robertog@kth.se.
Abstract: The isolation of security critical components from an untrusted OS allows to both protect applications and to harden the OS itself. Virtualization of the memory subsystem is a key component to provide such isolation. We present the design, implementation and verification of a memory virtualization platform for ARMv7-A processors. The design is based on direct paging, an MMU virtualization mechanism previously introduced by Xen. It is shown that this mechanism can be implemented using a compact design, suitable for formal verification down to a low level of abstraction, without penalizing system performance. The verification is performed using the HOL4 theorem prover and uses a detailed model of the processor. We prove memory isolation along with information flow security for an abstract top-level model of the virtualization mechanism. The abstract model is refined down to a transition system closely resembling a C implementation. Additionally, it is demonstrated how the gap between the low-level abstraction and the binary level-can be filled, using tools that check Hoare contracts. The virtualization mechanism is demonstrated on real hardware via a hypervisor hosting Linux and supporting a tamper-proof run-time monitor that provably prevents code injection in the Linux guest.
Keywords: Formal verification, information flow security, separation kernel, hypervisor
DOI: 10.3233/JCS-160558
Journal: Journal of Computer Security, vol. 24, no. 6, pp. 793-837, 2016
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