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A Learning Approach for Strategic Consumers in Smart Electricity Markets

机译:智能电力市场战略消费者的学习方法

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In this paper we consider the design and the implementation of a machine learning approach and its integration with a widely used energy simulation platform. We focus on auction based energy markets which require their participants to bid for their energy demands or offers at small time intervals. Our agent based system utilize weather data to teach both consuming devices and renewable energy sources to bid in an effective manner. We simulate realistic case studies of a residential distribution power grid with a total of more than 600 households with varying energy requirements. Photovoltaic panels as well as wind turbines are the regional energy resources. Our experimentation exhibit the effectiveness of the learning procedure both in term of power consumption and cost.
机译:在本文中,我们考虑了机器学习方法的设计和实现,并与广泛使用的能量仿真平台集成。我们专注于基于拍卖的能源市场,这些能源市场要求他们的参与者以小的时间间隔竞标或优惠。我们基于代理的系统利用天气数据来教导消费设备和可再生能源以有效的方式出价。我们模拟了住宅分销电网的现实案例研究,共有600多户具有不同的能量要求。光伏电池板以及风力涡轮机是区域能源资源。我们的实验在功耗和成本期间表现出学习程序的有效性。

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