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Deep Koopman Controller Synthesis for Cyber-Resilient Market-Based Frequency Regulation

机译:基于网络弹性市场的频率调节的深度Koopman控制器合成

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This paper investigates a data-driven countermeasure for price spoofing in the context of cyber security and market-based frequency regulation. Market-based control of transmission power networks relies on cyber-physical infrastructure, which raises questions of system vulnerability in relation to cyber-security. In this paper, we consider the challenge of engineering a robust data-driven controller in the presence of price spoofing, i.e. where hacking mechanisms adjust price signals in an ex-post market. We extend a recently developed algorithm called deep dynamic mode decomposition to learn Koopman operators of nonlinear systems with affine inputs. Based on the learned input-Koopman operator model, a design algorithm for nonlinear controller synthesis is devised to compute optimal dynamic pricing policies that restore the nominal frequency and recover economic efficiency in the presence of price spoofing. The efficacy of the proposed data-driven Koopman controller synthesis approach is validated through tests on a IEEE 39-bus benchmark.
机译:本文调查了网络安全和基于市场频率调节背景下的价格欺骗的数据驱动对策。基于市场的传输电网控制依赖于网络 - 物理基础设施,从而提高了与网络安全有关的系统漏洞问题。在本文中,我们考虑在价格欺骗的情况下,在价格欺骗的情况下,考虑工程稳健的数据驱动控制器的挑战,即黑客机制调整前市场中的价格信号。我们扩展了最近开发的算法,称为深度动态模式分解,以学习具有仿射输入的非线性系统的Koopman运算符。基于学习的Input-Koopman操作员模型,设计了一种用于非线性控制器合成的设计算法,以计算恢复名义频率的最佳动态定价策略,并在价格欺骗的存在下恢复经济效率。通过IEEE 39总线基准测试的测试,验证了所提出的数据驱动的Koopman控制器综合方法的功效。

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