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Generation of a fault-tolerant clock through redundant crystal oscillators

机译:通过冗余晶体振荡器产生容错时钟

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Having a precise and stable clock that is still fault tolerant is a fundamental prerequisite in safety critical realtime systems. However, combining redundant independent clock sources to form a unified fault-tolerant clock supply is non-trivial, especially when redundant clock outputs are required & ndash; e.g., for supplying the replicated nodes within a TMR architecture through a clock network that does not suffer from a single point of failure. Having these outputs fail independent but still keeping them tightly synchronized is highly desirable, as it substantially eases the design of the overall architecture.In this paper we address exactly this challenge. Our approach extends an existing, ring-oscillator like distributed clock generation scheme by augmenting each of its constituent nodes with a stable clock reference. We introduce the appropriately modified algorithm and illustrate its operation by simulation experiments. These experiments further demonstrate that the four clock outputs of our circuit do not share a single point of failure, have small and bounded skew, remain stabilized to one crystal source during normal operation, do not propagate glitches from one failed clock to a correct one, and only exhibit slightly extended clock cycles during a short stabilization period after a component failure. In addition we give a rigorous formal proof for the correctness of the algorithm on an abstraction level that is close to the implementation.
机译:具有精确和稳定的时钟仍然是容错是在安全关键实时系统的基本前提。然而,结合冗余独立的时钟源,以形成一个统一的容错时钟供给是不平凡的,特别是当需要&ndash的冗余时钟输出;例如,用于通过网络时钟不脱离故障的单点遭受供给TMR结构中的复制节点。有了这些输出失败独立,但仍保持它们紧密同步是非常可取的,因为它实质上减轻了整体architecture.In的本文中,我们讨论的正是这种挑战的设计。我们的方法通过增加其每个组成节点的具有稳定的时钟基准扩展现有,环形振荡器等分布式时钟产生方案。我们介绍的适当修改算法,并通过仿真实验说明其操作。这些实验进一步证明,我们的电路的四个时钟输出不共享单个故障点,具有小的和有界的歪斜,在正常操作过程中保持稳定,以一种晶源,执行从一个失败时钟不会传播毛刺到一个正确的,并且在组件故障后很短的稳定期仅表现出轻微的扩展时钟周期。此外,我们还给出了该算法对抽象度接近于实施的正确性严格的正式证明。

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