Multi-Method Approach to Compare the Socio-Demographic Typology of Residents and Clusters of Electricity Load Curves in a Swiss Sustainable Neighbourhood

Francesco Cimmino, J. Mastelic, Stephane Genoud
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Abstract

A sustainable neighbourhood was built Switzerland by one of the leaders in this field. Half of the 400 apartments have been equipped with smart meters delivering big data on energy consumption (electricity, water, heating…). The company would like to know if it is possible to link socio-demographic typology of residents with energy consumption patterns. To answer this question we present in this article a multimethod approach combining qualitative analysis, frequently used in marketing (multiple correspondence analyses), and quantitative analysis from applied statistics to answer this question. First, we have conducted a survey among the residents of the sustainable neighbourhood to gather socio-demographic data, and then we have proposed a marketing typology of residents. In parallel, we have analysed load curves with statistical models (clustering factors, hermano beta models, coincidence factors, som, expert practice) to see if there are patterns of energy consumption and to determine groups of similar load curves. Then we have compared the discrepancies in the composition of the groups between both methods. This study is based on a single case study generating a new research hypothesis: the typology of residents based on socio-demographic data can be linked to energy consumption pattern of a household.
多方法比较瑞士可持续社区居民的社会人口类型和电力负荷曲线集群
这个领域的一位领导者在瑞士建立了一个可持续发展的社区。400套公寓中有一半配备了智能电表,提供能源消耗(电、水、暖气等)的大数据。该公司想知道是否有可能将居民的社会人口类型与能源消费模式联系起来。为了回答这个问题,我们在本文中提出了一种多方法的方法,结合定性分析,经常用于市场营销(多重对应分析)和定量分析应用统计学来回答这个问题。首先,我们对可持续社区的居民进行了调查,以收集社会人口统计数据,然后我们提出了居民的营销类型学。同时,我们用统计模型(聚类因素、hermano beta模型、巧合因素、som、专家实践)分析了负荷曲线,以查看是否存在能源消耗模式,并确定相似负荷曲线的组。然后我们比较了两种方法在分组组成上的差异。本研究基于一个单一的案例研究,产生了一个新的研究假设:基于社会人口统计数据的居民类型可以与家庭的能源消费模式联系起来。
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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