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Notional examples and benchmark aspects of a resilient control system

机译:弹性控制系统的名义示例和基准方面

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Digital control system technology has pervaded most industries, leading to improvements in the efficiency and reliability of the associated operations. However, the ease of distributing and connecting related control systems for the purposes of increasing performance has resulted in interdependencies that can lead to unexpected conditions. Even with less complex designs, operators and engineers alike are often left with competing goals that are difficult to resolve. A fundamental reason for this dichotomy is that responsibilities lie with different disciplines, and operations are hosted on separate control systems. In addition, with the rising awareness of cyber security and diverse human interactions with control systems, an understanding of human actions from a malicious and benevolent standpoint is necessary. Resilience considers the multiple facets of requirements that drive the performance of control systems in a holistic fashion, whether they are security or stability, stability or efficiency, human interactions or complex interdependencies. As will be shown by example, current research philosophies lack the depth or the focus on the control system application to satisfy these requirements, such as graceful degradation of hierarchical control while under cyber attack. A resilient control system promises to purposefully consider these diverse requirements, developing an adaptive capacity to complex events that can lead to failure of traditional control system designs.
机译:数字控制系统技术已遍及大多数行业,从而提高了相关操作的效率和可靠性。但是,为了提高性能而分配和连接相关控制系统的简便性导致了相互依赖关系,这可能导致意外情况。即使设计不那么复杂,操作员和工程师也常常面临难以解决的竞争目标。这种二分法的根本原因是责任在于不同的学科,并且操作托管在单独的控制系统上。此外,随着人们对网络安全的认识不断提高以及人类与控制系统的各种交互作用,有必要从恶意和仁慈的角度来了解人类的行为。弹性考虑了以整体方式驱动控制系统性能的需求的多个方面,无论是安全性还是稳定性,稳定性或效率,人机交互还是复杂的相互依赖关系。如示例所示,当前的研究理念缺乏满足这些要求的控制系统应用的深度或重点,例如在受到网络攻击时逐步降低层次控制的要求。弹性控制系统有望有针对性地考虑这些多样化的需求,从而对可能导致传统控制系统设计失败的复杂事件发展出适应能力。

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