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Design and Real-Time Implementation of Optimal Power System Wide-Area System-Centric Controller Based on Temporal Difference Learning

机译:基于时间差学习的最优电力系统广域系统中心控制器的设计与实时实现

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摘要

In this paper, a novel framework for designing and implementing a coordinated wide-area controller architecture for improved power system dynamic stability is presented and tested. The algorithm is an optimal wide-area system-centric controller and observer based on a hybrid reinforcement learning and temporal difference framework. It allows the system to deal with major concerns of wide-area monitoring problem: delays in signal transmission, the uncertainty of the communication network, and data traffic. The main advantage of this design is its ability to learn from the past using eligibility traces and predict the optimal trajectory of cost function through temporal difference method. The control algorithm is evolved from adaptive critic design (ACD) and performed online at a finite horizon through backward and forward view. The ACD controller's training and testing are implemented on the Innovative Integration Picolo card integrated to TMS320C28335 processor. Results on a real experimental test bed using a real power system feeder shows that this architecture provides better stability compared with conventional schemes.
机译:在本文中,提出并测试了用于设计和实现协调的广域控制器体系结构以提高电力系统动态稳定性的新颖框架。该算法是基于混合强化学习和时差框架的最佳广域系统中心控制器和观测器。它使系统可以处理广域监视问题的主要问题:信号传输的延迟,通信网络的不确定性和数据流量。该设计的主要优点是能够使用资格跟踪信息从过去学习,并通过时间差异方法预测成本函数的最佳轨迹。该控制算法是从自适应批评家设计(ACD)演变而来的,并通过后视和前视在有限的范围内在线执行。 ACD控制器的培训和测试在集成到TMS320C28335处理器的Innovative Integration Picolo卡上进行。使用真实电源系统馈线的真实实验测试台上的结果表明,与传统方案相比,该体系结构提供了更好的稳定性。

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