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An Integrated Energy System Optimization Method Considering Q Learning Algorithm

机译:考虑Q学习算法的综合能源系统优化方法

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In recent years, the frequent natural disasters worldwide and their effects have attracted great attention of the international community. In this context, the traditional reliability research is not enough to support the safe operation of the power grid, and the concept of toughness emerges as the times require. In this paper, the dynamic power flow model of natural gas network is adopted, and the coupling relationship between distribution network reconfiguration in physical layer and information layer is considered. Based on this, Q learning algorithm is introduced to solve the complex problem. The simulation results show that the Q learning algorithm can achieve better convergence while solving the problem. The improved initialization method and the adopted confidence interval upper bound algorithm can significantly improve the computational efficiency and make the results converge to a better solution. Compared with the conventional mixed integer linear programming model, Q learning algorithm has better optimization results.
机译:近年来,世界范围内频繁发生的自然灾害及其后果引起了国际社会的极大关注。在这种情况下,传统的可靠性研究不足以支持电网的安全运行,而韧性的概念应运而生。本文采用天然气网络的动态潮流模型,考虑了物理层和信息层配电网重构之间的耦合关系。在此基础上,引入了Q学习算法来解决复杂的问题。仿真结果表明,Q学习算法在解决问题的同时可以达到较好的收敛性。改进的初始化方法和采用的置信区间上限算法可以显着提高计算效率,并使结果收敛为更好的解决方案。与传统的混合整数线性规划模型相比,Q学习算法具有更好的优化效果。

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