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Smart Meter Data Analytics for Occupancy Detection of Buildings with Renewable Energy Generation

机译:智能电表数据分析,用于可再生能源建筑物的占用检测

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The activity of people causes distinctive patterns in the total electricity consumption of a building as does also the energy generation from renewables if present. The goal of the study is to test analysis methods that enable remotely metered electricity consumption data to be used for automatically analysing the occupancy of buildings equipped with renewable energy generation. Pattern recognition techniques can be used for the purpose of occupancy detection. It was concluded that in many cases the moving average of a consumption pattern is sufficient to determine the fact whether people occupy the building or not, but the addition of on-site renewable energy production makes it more complex. The fact if there is renewable energy production in the building plays a critical role and has to be detected additionally, because it generates fluctuations on its own which have to be taken into account. The averaging time step of the available datasets is another aspect that influences the precision of the achieved detection results. The occupancy information can be used for different purposes, like researching the mobility of humans. In this case the results need to be aggregated to preserve the privacy of individuals.
机译:人的活动会导致建筑物总用电量的不同模式,如果存在可再生能源,也会导致其产生电能。这项研究的目的是测试分析方法,使远程计量的电量消耗数据可以用于自动分析配备可再生能源发电的建筑物的占用情况。模式识别技术可以用于占用检测的目的。结论是,在许多情况下,消费模式的移动平均值足以确定人们是否居住在建筑物内的事实,但是现场可再生能源生产的增加使其变得更加复杂。建筑物中是否存在可再生能源这一事实起着至关重要的作用,因此必须加以检测,因为它本身会产生波动,必须将其考虑在内。可用数据集的平均时间步长是影响获得的检测结果精度的另一个方面。占用信息可用于不同目的,例如研究人类的活动能力。在这种情况下,需要汇总结果以保护个人隐私。

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