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Clustering of Complementary Electricity Consumers Based on Their Usage Patterns

机译:基于用电模式的互补用电者聚类

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摘要

In the electricity market, the real-time balance of electricity generation and consumption is a main task. In view of this, power providers usually sign contracts with their critical consumers (i.e., usually large-scale industrial companies) for managing their capacity demands. On the other hand, aggregators group commercial and residential consumers, and integrate their demands to negotiate with power providers. With a proper grouping of numerous electricity consumers, aggregators help to ensure stable electric supply, and reduce the burden of managing many consumers. In this work, we thus propose a novel data clustering approach to group complementary consumers based on their usage patterns (i.e., daily electricity consumption curves.) Furthermore, we incorporate the technique of discrete wavelet transform to speed up the clustering process. Specifically, approximations reconstructed from only a few wavelet coefficients may precisely capture the shape of original usage patterns. Experimental results based on a real dataset show that our approach is promising in practical applications.
机译:在电力市场中,发电和消耗的实时平衡是一项主要任务。有鉴于此,电力供应商通常与关键消费者(即通常是大型工业公司)签订合同以管理其容量需求。另一方面,聚合器将商业和住宅用户分组,并整合他们的需求以与电力供应商进行谈判。通过适当地将众多用电者分组,聚合器可以帮助确保稳定的电力供应,并减轻管理许多用电者的负担。因此,在这项工作中,我们提出了一种新颖的数据聚类方法,根据互补型消费者的使用模式(即每日用电量曲线)对它们进行分组。此外,我们结合了离散小波变换技术来加快聚类过程。具体地,仅从几个小波系数重构的近似值可以精确地捕获原始使用模式的形状。基于真实数据集的实验结果表明,我们的方法在实际应用中很有希望。

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