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Short-term Load Forecasting System for Smartgrids based on Personal Power Units

机译:基于个人电力单元的SmartGrids短期负荷预测系统

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Popularization of personal low-power renewable energy sources and storages application led to the appearance of flexible energy markets. When implementing a high-efficiency model of electric power trading the demand for proper assessment of the balance between consumed and produced energy becomes the biggest and the most important challenge for research. The proposed structure of microgrid system is based essentially on the combined use of personal power units and hardware-software complex built on Internet of Things (IoT), MultiAgent (MAS) and Machine Learning (ML) technologies. The main objective of that complex is an adjustment of each consumer’s expected daily load curve in accordance with a number of external factors. The data obtained are used for the further formation of the agent’s logic, which are carrying out the buy & sell process of electric energy for the benefit of every consumer. The transaction control role falls on each participant in the market. This solution makes it possible to organize the distributed self-regulated market of electric energy and computing resources to ensure the high-effective and reliable power supplying of microgrid participants with minimal involvement from both outer power grid, and the consumers.
机译:个人低功耗可再生能源的普及和商店应用导致了灵活的能源市场的外观。在实施电力交易的高效模型时,对消费和产生能源之间平衡进行适当评估的需求成为最大和最重要的研究挑战。微电网系统的建议结构基本上基于个人电力单元和硬件 - 软件复合物的组合使用,内置于物联网(物联网),多层(MAS)和机器学习(ML)技术。该复杂的主要目的是根据许多外部因素调整每个消费者预期的日常负载曲线。所获得的数据用于进一步形成代理的逻辑,该逻辑正在开展电能的购买和销售过程,以便为每个消费者的利益。交易控制角色在市场上的每位参与者上落下。该解决方案使得可以组织电能和计算资源的分布式自调节市场,以确保微电网与外部电网和消费者累积的微电网参与者的高有效和可靠的供电。

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