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Smart home: A novel model for denoising an electrical signal

机译:智能家居:用于消除电信号的新型模型

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Emerging trends for energy monitoring as in Smart Energy Systems require intelligent solutions for appliances identification. Non-intrusive load monitoring (NILM) systems are able to extract particular features from the aggregate consumption of the electrical network. However, the whole-consumption signal is contaminated with noise, which hinders successful load disambiguation of individual appliances. In this work, we propose a novel approach to denoise a signal based on the techniques of Embedding, Wavelet Shrinkage and Diagonal Averaging. The embedding stage transforms the one-dimensional signal into a sequence of lagged vectors. These vectors are denoised using wavelet decomposition. Finally, the denoised signal is obtained by taking the diagonal averages of the resultant matrix. Our approach is compared to Wavelet Decomposition and Singular Spectrum Analysis methods for electrical signal denoising. The results are very favorable since they yield better performance as highlighted by the statistical tests performed.
机译:智能能源系统中不断出现的能源监控趋势需要智能的设备识别解决方案。非侵入式负载监控(NILM)系统能够从电网的总消耗中提取特定功能。但是,整个消耗信号都被噪声污染,这阻碍了单个设备成功消除负载歧义。在这项工作中,我们提出了一种基于嵌入,小波收缩和对角平均技术的信号去噪新方法。嵌入阶段将一维信号转换为一系列滞后向量。使用小波分解对这些向量进行去噪。最后,通过对所得矩阵的对角线平均值求出去噪信号。我们的方法与电信号去噪的小波分解和奇异频谱分析方法进行了比较。结果非常有利,因为如执行的统计测试所示,它们产生了更好的性能。

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