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AMulti-agent-based voltage control in power systems using distributed reinforcement learning

机译:使用分布式强化学习的电力系统中基于多主体的电压控制

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In this paper we show the application of multi-agent modeling and simulation with distributed reinforcement learning to one of the major problems in power system operations, i.e. voltage control. In this research some agents in the power network work together to provide a desirable voltage profile, using a combination of multi-agent system (MAS) technology and some of the reinforcement learning approaches. In this schema, individual agents who are assigned to voltage controller devices in the power system learn from their experiences to control the system voltage, and also cooperate and communicate with each other to satisfy the whole team goals. A detailed evaluation of methods for controlling voltage in power systems, including multi-agent coordination and distributed reinforcement learning (DRL), demonstrates that this framework yields effective plans, good agent coordination, and successful implementation. In the proposed approach, agent development and communication simulation have been carried out in the Java Agent Development (JADE) framework.
机译:在本文中,我们展示了具有分布式强化学习的多主体建模和仿真在电力系统运行中的主要问题之一(即电压控制)中的应用。在这项研究中,电网中的某些智能体通过结合使用多智能体系统(MAS)技术和一些强化学习方法,共同提供理想的电压曲线。在此方案中,分配给电力系统中电压控制器设备的各个代理从他们的经验中学习以控制系统电压,并且还相互配合并进行通信以达到整个团队的目标。对电力系统中控制电压的方法(包括多主体协调和分布式强化学习(DRL))的详细评估表明,该框架可产生有效的计划,良好的主体协调和成功的实施。在提出的方法中,已经在Java代理开发(JADE)框架中进行了代理开发和通信仿真。

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