Demonstration abstract: Submetering by synthesizing side-channel sensor streams

Meghan Clark, Bradford Campbell, P. Dutta
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Abstract

Detailed breakdowns of household energy consumption allow occupants to better understand their energy usage patterns and identify opportunities for energy savings. Current solutions are costly, invasive, and difficult to maintain. Sub-metering approaches rely on - and are hindered by - complex hardware. To address these problems, we demonstrate a sub-metering system that can estimate the power draw of individual loads by augmenting aggregate measurements with very simple sensors. These sensors wake up at a frequency proportional to the power draw of a neighboring load, and report these wakeups to a central server. We model the relationship between each sensor's wakeup frequency and the load's power draw as a monotonically increasing polynomial. We calibrate each sensor's function by constructing a linear least squares problem that allows us to discover the set of polynomial coefficients that minimize the difference between the estimated power draw and the power draw as derived from the aggregate measurements. After calibration, we can convert sensor wakeup frequencies to power draw in real time. This systems approach to sub-metering results in deployments that are easy to install and maintain, allowing users to gain a broad yet detailed view of their energy consumption and costs.
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演示摘要:通过合成侧通道传感器流进行分计量
家庭能源消耗的详细分类,让住户更了解他们的能源使用模式,并找出节约能源的机会。当前的解决方案成本高昂,具有侵入性,而且难以维护。分计量方法依赖于复杂的硬件,也受到复杂硬件的阻碍。为了解决这些问题,我们演示了一个分计量系统,该系统可以通过使用非常简单的传感器增加汇总测量来估计单个负载的功耗。这些传感器以与邻近负载的功耗成比例的频率唤醒,并将这些唤醒报告给中央服务器。我们将每个传感器的唤醒频率与负载的功耗之间的关系建模为单调递增的多项式。我们通过构建一个线性最小二乘问题来校准每个传感器的功能,该问题允许我们发现一组多项式系数,这些系数可以最小化估计功耗与从汇总测量得出的功耗之间的差异。校准后,我们可以将传感器的唤醒频率实时转换为功耗。这种分计量系统的部署方法易于安装和维护,允许用户获得广泛而详细的能源消耗和成本视图。
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