Grade Analysis for households segmentation based on energy usage patterns

T. Zabkowski, Krzysztof Gajowniczek
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引用次数: 1

Abstract

The Grade Correspondence Analysis (GCA) with posterior clustering and visualization is introduced and applied to individual households' electricity usage data. The main task of this analysis is to identify a way of representing the variability of a households behavior and to develop an efficient way of clustering the households into a few, usable and homogenous groups. The regularity in terms of the electricity usage is useful information for organizations to allow accurate demand planning with the aim of improving the overall efficiency of the network. The approach is tested using data from 46 households located in Austin, Texas, USA and monitored for 14 months at a sampling interval of 1 hour.
基于能源使用模式的家庭划分等级分析
介绍了基于后验聚类和可视化的等级对应分析方法(GCA),并将其应用于个体家庭用电数据。这项分析的主要任务是确定一种表示家庭行为可变性的方法,并开发一种有效的方法,将家庭聚集成几个可用的同质组。电力使用的规律性对组织来说是有用的信息,可以准确地规划需求,以提高电网的整体效率。该方法使用了位于美国德克萨斯州奥斯汀的46个家庭的数据进行了测试,并以1小时的采样间隔监测了14个月。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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