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An analysis of utility meter data aggregation and tenant privacy to support energy use disclosure in commercial buildings

机译:分析公用事业仪表数据聚合和租户隐私以支持商业建筑中的能耗披露

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摘要

A growing number of cities are adopting energy use benchmarking ordinances, which require building owners report their buildings' total energy usage annually. It also requires that utilities supply aggregated building-level monthly energy consumption data. The data aggregation poses privacy concerns, as it is possible to estimate the individual tenant load consumption curve by dividing aggregated energy data by the number of meters. A solution is to quantify and assess the impact of adjusting the utility meter aggregation threshold on tenant privacy and on buildings that are eligible for energy usage reporting. As the threshold increases, fewer buildings are eligible for energy use data disclosure and therefore lessening data value. This study aims to investigate the similarity between individual utility meters and whole-building totals at various aggregation levels. Based on statistical analysis of 715,000 anonymized, non-residential meter accounts from six utilities across the U.S., we developed the "Meter Aggregation Selection Threshold" as a metric to assess tenant privacy risk. The metric estimates the portion of individual customer energy use patterns that are similar to the aggregated building consumption profile. It allows policy makers to make an informed decision on whether required disclosure regulations compromise business sensitive information and tenant privacy. (C) 2018 Elsevier Ltd. All rights reserved.
机译:越来越多的城市正在采用能源使用基准法令,要求建筑物业主每年报告建筑物的总能源使用量。它还要求公用事业提供汇总的建筑级别每月能耗数据。数据聚合带来了隐私问题,因为可以通过将聚合的能源数据除以仪表的数量来估算单个租户的负载消耗曲线。一种解决方案是量化和评估调整公用事业计量表聚合阈值对租户隐私和符合能耗报告的建筑物的影响。随着阈值的增加,有更少的建筑物符合能源使用数据披露的条件,因此减少了数据价值。这项研究旨在调查各个公用事业级别的各个公用事业电表与整栋建筑物之间的相似性。基于对来自美国6家公用事业公司的71.5万个匿名,非住宅仪表账户的统计分析,我们开发了“仪表汇总选择阈值”作为评估租户隐私风险的指标。该度量标准估计单个客户能源使用模式的一部分,该部分与汇总的建筑物消耗曲线相似。它使政策制定者可以根据要求的披露法规是否危及业务敏感信息和租户隐私做出明智的决定。 (C)2018 Elsevier Ltd.保留所有权利。

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