Microkernel Mechanisms for Improving the Trustworthiness of Commodity Hardware

Yanyan Shen, Kevin Elphinstone
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引用次数: 2

Abstract

Trustworthy isolation is required to consolidate safety and security critical software systems on a single hardware platform. Recent advances in formally verifying correctness and isolation properties of a microkernel should enable mutually distrusting software to co-exist on the same platform with a high level of assurance of correct operation. However, commodity hardware is susceptible to transient faults triggered by cosmic rays, and alpha particle strikes, and thus may invalidate the isolation guarantees, or trigger failure in isolated applications. To increase trustworthiness of commodity hardware, we apply redundant execution techniques from the dependability community to a modern microkernel. We leverage the hardware redundancy provided by multicore processors to perform transient fault detection for applications and for the microkernel itself. This paper presents the mechanisms and framework for microkernel based systems to implement redundant execution for improved trustworthiness. It evaluates the performance of the resulting system on x86-64 and ARM platforms.
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提高商品硬件可信度的微内核机制
在单个硬件平台上整合安全和安全关键软件系统需要可靠的隔离。最近在正式验证微内核的正确性和隔离属性方面取得的进展应该能够使互不信任的软件在同一平台上共存,并对正确操作提供高水平的保证。但是,商品硬件容易受到宇宙射线和α粒子撞击触发的瞬态故障的影响,因此可能使隔离保证失效,或在孤立的应用程序中触发故障。为了提高商品硬件的可信度,我们将可靠性社区的冗余执行技术应用于现代微内核。我们利用多核处理器提供的硬件冗余来为应用程序和微内核本身执行瞬态故障检测。本文提出了基于微内核的系统实现冗余执行以提高可信度的机制和框架。它评估了最终系统在x86-64和ARM平台上的性能。
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