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Multi-label load disaggregation in presence of non-targeted loads

机译:在非目标负载存在下的多标签负载分解

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Non Intrusive Load Monitoring (NILM), also called, load disaggregation aims to infer load level electrical energy consumption from the aggregate power signal. Several challenges are limiting the deployment of NILM systems in residential and commercial buildings. In this paper, we treat the case of energy disaggregation in the presence of non-targeted loads. Non-targeted loads in our context stand for electrical loads for which we do not have labels during the training phase of the NILM algorithm. However, those loads may exist in a real-world scenario, and their power consumption adds to the aggregate power signal. In this work, we present our load disaggregation method based on a multi-label classification approach and study the impact of non-targeted loads on the NILM disaggregation performance. We show that the non-targeted loads can negatively affect the disaggregation performance of NILM systems and found a significant correlation between the disaggregation performance impact and the overlapping coefficient of the targeted and non targeted loads' power distributions. Results are obtained using a publicly available dataset of power measurements.
机译:不侵入式载荷监测(尼尔),也称为负载分解旨在从聚合功率信号推断负载电平电能消耗。一些挑战限制了住宅和商业建筑中尼尔系统的部署。在本文中,我们在存在非靶向载荷的情况下对能量分解的情况进行治疗。在我们的上下文中的非目标负载代表在尼尔算法的训练阶段期间我们没有标签的电负载。然而,这些负载可能存在于真实世界场景中,并且它们的功耗增加到聚合功率信号。在这项工作中,我们介绍了基于多标签分类方法的负载分组方法,研究了非目标负载对尼米分类性能的影响。我们表明,非目标负载可以对尼尔系统的分解性能产生负面影响,发现分解性能影响与目标和非目标负载的电力分布的重叠系数之间的显着相关性。使用可公开的电力测量数据集获得结果。

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