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Detecting Swimming Pools in 15-Minute Load Data

机译:在15分钟的负载数据中检测游泳池

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摘要

The ability to detect appliances in load data highly depends on the resolution of the data. While a lot of related work exists on detecting appliances in second or sub-second granularity load data, in this paper, we detect swimming pools through their filter pumps in load data with the 15-minute granularity prescribed by the European Union for smart meters. We model the filter pump based on exemplary measurements and describe a prototypical algorithm to extract the filter pump's consumption from the aggregated mains signal of a real-world household. We evaluate pool detection performance with different classifiers on a data set with 843 households, where the information on the existence of a swimming pool is available. We achieve 94.8% detection accuracy with a precision of 68.5% with an off-the-shelf classifier. Decreasing the temporal resolution in several steps to 8 hours negatively affects the recall while the precision stays at the same level. We find that these results raise privacy concerns even at the minimum temporal resolution of smart meter data that is legally required in the European Union.
机译:能够高度依赖于负载数据中的设备的能力。虽然在第二种或二次粒度负荷数据中检测设备的许多相关工作存在,但在本文中,我们通过欧盟智能仪表规定的15分钟粒度来检测游泳池,通过欧盟的15分钟粒度。我们基于示例性测量来模拟过滤器泵,并描述了从真实家庭的聚合电源信号中提取过滤器泵的消耗的原型算法。我们在带有843户家庭的数据集上使用不同的分类器评估池检测性能,其中有关于存在游泳池的信息。我们达到94.8 %检测精度,精度为1架子分类器,精度为68.5 %。在几个步骤中降低时间分辨率至8小时对召回的次数产生负面影响,而精度保持在同一级别。我们发现这些结果即使在欧洲联盟法律规定的智能电表数据的最低时间解决方案中,也会提高隐私问题。

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