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Robust and resilient control design for cyber-physical systems with an application to power systems

机译:网络物理系统的鲁棒和弹性控制设计及其在电力系统中的应用

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The tradeoff between robustness and resilience is a pivotal design issue for modern industrial control systems. The trend of integrating information technologies into control system infrastructure has made resilience an important dimension of the critical infrastructure protection mission. It is desirable that systems support state awareness of threats and anomalies, and maintain acceptable levels of operation or service in the face of unanticipated or unprecedented incidents. In this paper, we propose a hybrid theoretical framework for robust and resilient control design in which the stochastic switching between structure states models unanticipated events and deterministic uncertainties in each structure represent the known range of disturbances. We propose a set of coupled optimality criteria for a holistic robust and resilient design for cyber-physical systems. We apply this method to a voltage regulator design problem for a synchronous machine with infinite bus and illustrate the solution methodology with numerical examples.
机译:鲁棒性和弹性之间的权衡是现代工业控制系统的关键设计问题。将信息技术集成到控制系统基础架构中的趋势已使弹性成为关键基础架构保护任务的重要方面。希望系统支持状态对威胁和异常的感知,并在遇到意外事件或空前事件时保持可接受的操作或服务水平。在本文中,我们提出了一种用于鲁棒和弹性控制设计的混合理论框架,其中结构状态之间的随机切换对模型中的未预期事件和确定性不确定性进行了建模,代表了已知的扰动范围。我们为网络物理系统的整体鲁棒性和弹性设计提出了一套耦合的最优标准。我们将此方法应用于具有无限总线的同步电机的稳压器设计问题,并通过数值示例说明了解决方法。

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