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Design and validation of fault-tolerant embedded controllers

机译:容错嵌入式控制器的设计与验证

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Embedded control systems are an important and often safety-critical class of applications that need to operate reliably even in the presence of faults. We show that intermittent fault scenarios caused by wear-out effects due to a higher density and a smaller geometry of the embedded electronic components may become a reliability concern for real-time embedded control applications. To mitigate the effects of such intermittent faults, we propose a novel fault-tolerant controller design method such that the resulting controllers ensure closed loop stability (i.e., guarantee safety) with only possibly degraded performance under such fault scenarios. In order to measure the amortized performance offered by the software implementations of such fault-tolerant controllers, we provide a program analysis methodology that statically estimates the quality of control guaranteed by the C code implementation of the fault-tolerant control law. This combination of fault-tolerant controller design followed by performance feedback computed using a formal analysis is illustrated with a case study from the automotive domain.
机译:嵌入式控制系统是一类重要且通常是安全性至关重要的应用程序,即使在出现故障时也需要可靠地运行。我们表明,由于嵌入式电子组件的较高密度和较小几何形状而引起的磨损效应所导致的间歇性故障情况可能会成为实时嵌入式控制应用程序的可靠性问题。为了减轻此类间歇性故障的影响,我们提出了一种新颖的容错控制器设计方法,以使所得的控制器在这种故障情况下确保闭环稳定性(即保证安全性),而性能可能只会降低。为了衡量此类容错控制器的软件实现所提供的摊销性能,我们提供了一种程序分析方法,可静态估算由容错控制法则的C代码实现保证的控制质量。通过汽车领域的案例研究,说明了容错控制器设计与通过形式分析计算出的性能反馈的组合。

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