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Multi-Agent Correlated Equilibrium Q(λ) Learning for Coordinated Smart Generation Control of Interconnected Power Grids

机译:互联电网协调智能发电控制的多智能体相关均衡Q(λ)学习

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This paper proposes an optimal coordinated control methodology based on the multi-agent reinforcement learning (MARL) for the multi-area smart generation control (SGC) under the control performance standards (CPS). A new MARL algorithm called correlated Q(λ) learning (CEQ(λ)) is presented to form an optimal joint equilibrium strategy for the coordinated load frequency control of interconnected control areas, and a SGC framework is proposed to facilitate information sharing and strategic interaction among multi-areas so as to enhance the overall long-run performance of the control areas. Furthermore, a novel time-varying equilibrium factor is introduced into the equilibrium selection function to identify the optimum equilibrium policies in various power system operation scenarios. The performance of CEQ(λ) based SGC strategy has been fully tested and benchmarked on a two-area power system and the China Southern Power Grid. Comparative studies have not only demonstrated the superior equilibrium optimization and dynamic performance of the proposed SGC strategy but also confirmed its fast convergence and high flexibility in designing the equilibrium factor for the desirable operating state of correlated equilibria.
机译:本文提出了一种基于多智能体强化学习(MARL)的最优协调控制方法,用于控制性能标准(CPS)下的多区域智能发电控制(SGC)。提出了一种新的MARL算法,称为相关Q(λ)学习(CEQ(λ)),以形成互连控制区域的协调负荷频率控制的最优联合平衡策略,并提出了一种SGC框架以促进信息共享和战略互动。在多个区域之间进行交互,以提高控制区域的整体长期性能。此外,将新颖的时变平衡因子引入平衡选择函数,以识别各种电力系统运行场景中的最佳平衡策略。基于CEQ(λ)的SGC策略的性能已在两区域电力系统和南方电网上进行了全面测试和基准测试。比较研究不仅证明了拟议中的SGC策略具有出色的均衡优化和动态性能,而且还证实了它在为相关均衡的理想工作状态设计均衡因子时具有快速收敛性和高度灵活性。

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