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Microgrid Energy Management Based on Sample-Efficient Reinforcement Learning

  • Wenjing Zhang
  • , Zhuo Chen
  • , Yuanjun Zuo
  • , Yanbo Long
  • , Hong Qiao
  • , Xianyong Xu
  • State Grid Corporation of China

科研成果: 书/报告/会议事项章节会议稿件同行评审

3 引用 (Scopus)

摘要

Microgrid is a small power system composed of distributed energy resources, and its energy management strategy (EMS) is of great significance for improving energy utilization efficiency and reducing energy waste. However, due to the complexity and uncertainty of microgrid, the traditional reinforcement learning algorithm has the problem of low sample efficiency when applied to this system. In order to solve this problem, a sample-efficient reinforcement learning algorithm is proposed in this paper. The algorithm trains and optimizes the model by establishing state-action-reward model and interacting with the simulation environment. In addition, the algorithm avoids the overfitting problem by resetting network parameters periodically. Through continuous iterative training, the system can gradually learn the optimal control strategy. The experimental results show that out proposed EMS can achieve efficient energy utilization and stable power supply. Compared with the traditional reinforcement learning algorithm, the proposed algorithm has significantly improved sample efficiency and performance. Therefore, this algorithm has important application value and popularization potential in microgrid energy management.

源语言英语
主期刊名2023 13th International Conference on Power and Energy Systems, ICPES 2023
出版商Institute of Electrical and Electronics Engineers Inc.
379-384
页数6
ISBN(电子版)9798350345063
DOI
出版状态已出版 - 2023
已对外发布
活动13th International Conference on Power and Energy Systems, ICPES 2023 - Chengdu, 中国
期限: 8 12月 202310 12月 2023

出版系列

姓名2023 13th International Conference on Power and Energy Systems, ICPES 2023

会议

会议13th International Conference on Power and Energy Systems, ICPES 2023
国家/地区中国
Chengdu
时期8/12/2310/12/23

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