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Principal components null space analysis based non-intrusive load monitoring

机译:基于非侵入式负载监控的主组件空空间分析

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Non-intrusive load monitoring (NILM) is a commonly known problem where power consumption profile of electrical loads including home appliances connected to the power grid needs to be generated without adding any extra hardware to the appliances. Various approaches have been proposed to indirectly detect and identify electrical home appliences by utilizing the information from their temporal behavior (current and voltage transients), energy and power consumption levels, shape of current, voltage and power consumption, noise level characteristics and electro-magnetic interference (EMI) signatures. In this paper, a principal components null space analysis (PCNSA) based classification method is proposed to identify electrical loads from their time-frequency analysis data or EMI signatures. EMI signatures of a number of home appliances have been measured and collected to determine the performance of the method with actual appliance data. It is shown that the proposed method offers promising results, therefore, further research is motivated.
机译:非侵入式负载监测(NILM)是需要产生包括连接到电网的家用电器的电负载的功耗分布,而无需向设备添加任何额外的硬件。已经提出了各种方法来间接地通过利用来自其时间行为(电流和电压瞬变),能量和功耗水平,电流,电压和功耗,噪声水平特性和电磁的信息来检测和识别电气家庭应用。干扰(EMI)签名。在本文中,提出了基于空间分析(PCNSA)的基于分类方法,以识别来自其​​时频分析数据或EMI签名的电负载。已经测量并收集了许多家用电器的EMI签名,以确定具有实际设备数据的方法的性能。结果表明,该方法提供了有希望的结果,因此进一步研究是有动力的。

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