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Adaptive Fault Detection Exploiting Redundancy with Uncertainties in Space and Time

机译:利用时空不确定性的冗余冗余自适应故障检测

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The Internet of Things (IoT) connects millions of devices of different cyber-physical systems (CPSs) providing the CPSs additional (implicit) redundancy during runtime. However, the increasing level of dynamicity, heterogeneity, and complexity adds to the system's vulnerability, and challenges its ability to react to faults. Self-healing is an increasingly popular approach for ensuring resilience, that is, a proper monitoring and recovery, in CPSs. This work encodes and searches an adaptive knowledge base in Prolog/ProbLog that models relations among system variables given that certain implicit redundancy exists in the system. We exploit the redundancy represented in our knowledge base to generate adaptive runtime monitors which compare related signals by considering uncertainties in space and time. This enables the comparison of uncertain, asynchronous, multi-rate and delayed measurements. The monitor is used to trigger the recovery process of a self-healing mechanism. We demonstrate our approach by deploying it in a real-world CPS prototype of a rover whose sensors are susceptible to failure.
机译:物联网(IoT)连接了数百万个不同网络物理系统(CPS)的设备,从而在运行时为CPS提供了额外的(隐式)冗余。但是,动态性,异构性和复杂性的水平不断提高,增加了系统的脆弱性,并挑战了其对故障做出反应的能力。自我修复是一种越来越受欢迎的方法,用于确保CPS的弹性,即适当的监视和恢复。这项工作对Prolog / ProbLog中的自适应知识库进行编码和搜索,在系统中存在某些隐式冗余的情况下,该知识库可对系统变量之间的关系进行建模。我们利用知识库中表示的冗余来生成自适应运行时监视器,该监视器通过考虑空间和时间的不确定性来比较相关信号。这样可以比较不确定,异步,多速率和延迟的测量。该监视器用于触发自我修复机制的恢复过程。我们通过将其部署在其传感器易受故障影响的流动站的真实CPS原型中来展示我们的方法。

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