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Towards the Prediction of Renewable Energy Unbalance in Smart Grids

机译:朝向智能电网中可再生能源不平衡的预测

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The production of renewable energy is increasing worldwide. To integrate renewable sources in electrical smart grids able to adapt to changes in power usage in heterogeneous local zones, it is necessary to accurately predict the power production that can be achieved from renewable energy sources. By using such predictions, it is possible to plan the power production from non-renewable energy plants to properly allocate the produced power and compensate possible unbalances. In particular, it is important to predict the unbalance between the power produced and the actual power intake at a local level (zones). In this paper, we propose a novel method for predicting the sign of the unbalance between the power produced by renewable sources and the power intake at the local level, considering zones composed of multiple power plants and with heterogeneous characteristics. The method uses a set of historical features and is based on Computational Intelligence techniques able to learn the relationship between historical data and the power unbalance in heterogeneous geographical regions. As a case study, we evaluated the proposed method using data collected by a player in the energy market over a period of seven months. In this preliminary study, we evaluated different configurations of the proposed method, achieving results considered as satisfactory by a player in the energy market.
机译:可再生能源的生产正在增加全世界。为了将能够适应异构局部区域的功率使用变化的电动智能电网中的可再生源整合,有必要准确地预测可从可再生能源实现的电力产生。通过使用这样的预测,可以从不可再生能源设备规划功率产生,以适当地分配产生的功率并补偿可能的不平衡。特别是,重要的是预测所产生的功率之间的不平衡以及局部层次(区域)的实际电力摄入量。在本文中,我们提出了一种新的方法,用于预测可再生源和局部电力摄入的功率之间的不平衡的迹象,考虑由多个发电厂和异质特性组成的区域。该方法使用一组历史特征,基于能够学习历史数据与异构地理区域中的功率不平衡之间的关系的计算智能技术。作为案例研究,我们使用由能源市场收集的数据在七个月内使用的数据进行了评估了该方法。在这项初步研究中,我们评估了所提出的方法的不同配置,实现了能源市场中的球员被视为令人满意的结果。

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