An inference framework for detection of home appliance activation from voltage measurements

Zeyu You, R. Raich, Yonghong Huang
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引用次数: 6

Abstract

We present an inference framework for automatic detection of activations of home appliances based on voltage envelope waveforms. We cast the problem of appliance detection and recognition as an inference problem. When the activation signatures are known, the problem reduces to a simple detection problem. When the activation signatures are unknown, the problem is reformulated as a blind joint delay estimation. Due to the non-convexity of the negative log-likelihood, finding a global optimal solution is a key challenge. Here, we introduce a novel algorithm to estimate the activation templates, which is guaranteed to yield an error within a factor of two of that of the optimal solution. We apply our method to a real-world dataset consisting of voltage waveform measurements of several appliances obtained in multiple homes over a few weeks. Based on ground truth data, we present a quantitative analysis of the proposed algorithm and alternative approaches.
从电压测量中检测家用电器激活的推理框架
我们提出了一个基于电压包络波形的家用电器激活自动检测的推理框架。我们将器具的检测和识别问题转化为一个推理问题。当激活签名已知时,问题就简化为一个简单的检测问题。当激活签名未知时,将该问题重新表述为盲联合延迟估计。由于负对数似然的非凸性,寻找全局最优解是一个关键的挑战。在这里,我们引入了一种新的算法来估计激活模板,该算法保证在最优解的两个因子内产生误差。我们将我们的方法应用于一个真实世界的数据集,该数据集由几个星期内在多个家庭中获得的几个电器的电压波形测量组成。基于地面真实数据,我们对所提出的算法和替代方法进行了定量分析。
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