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Adaptive Multiagent Model Based on Reinforcement Learning for Distributed Generation Systems

机译:基于强化学习的分布式发电系统自适应多主体模型

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Distributed generation have been widely spread in the last decades raising a lot of questions regarding the safe and high-quality operation of the power systems. The investigation of these questions requires a proper model considering the different technical, economical and legal aspects. The goal of our research was to develop a multiagent system where rational agents control each distributed generation unit. Based on intelligent agent-program the agents are able to optimize their operations taking several viewpoints into account, like fulfilling the contractual obligations, considering the technical constraints and maximizing the realized profit in a continuously varying market environment. This paper describes a simple reinforcement learning method resulting in an adaptive agent-program. The agents are informed about their realized profits and they apply this information to evaluate their former decisions and to adjust the parameters of their agent-program. The verification of the model proved that the developed agent-program provides acceptable results compared to the real productions.
机译:在过去的几十年中,分布式发电已经广泛传播,引发了许多有关电力系统安全和高质量运行的问题。对这些问题的调查需要考虑不同技术,经济和法律方面的适当模型。我们研究的目的是开发一个多代理系统,其中理性代理控制每个分布式发电单元。基于智能代理程序,代理能够在考虑多种因素的情况下优化其运营,例如履行合同义务,考虑技术约束并在不断变化的市场环境中最大化已实现的利润。本文介绍了一种简单的强化学习方法,该方法可生成自适应Agent程序。代理商将获悉其已实现的利润,并使用此信息来评估其先前的决策并调整代理商程序的参数。模型的验证证明,与实际生产的产品相比,开发的代理程序提供了可接受的结果。

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