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Multivariate Denoising and Missing Data Estimation for Heavy-Tailed Signals

机译:Multivariate Denoising and Missing Data Estimation for Heavy-Tailed Signals

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摘要

This study focuses on heavy-tailed noise reduction in multivariate signals, with no knowledge of their forms. We propose a non-parametric multivariate denoising technique which is robust to heavy-tailed noise. Using a univariate robust linear regression, we construct a multivariate non-parametric method. We design a robust matrix decomposition and, consequently, propose a robust procedure including this new decomposition. In addition, we develop a robust procedure for the imputation of the missing points of the signals. The key advantage of our methods over the previous tools is the robustness to the heavy-tailed observations. The results of our simulation study confirm the good performance of the proposed methods.

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