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Mitigating wind noise in outdoor microphone signals using a singular spectral subspace method

机译:使用奇异谱子空间方法缓解室外麦克风信号中的风噪声

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Wind noise is one of the major concerns of outdoor microphone signal acquisition. Filtering and removal of wind noise are known to be difficult due to its broadband and time varying nature. This paper proposes the use of singular spectrum analysis to address the problem of microphone wind noise removal and/or separation. The paper is presented from the context of reducing microphone wind noise when deploying outdoor acoustic sensing in smart city applications and soundscapes monitoring. But concepts and methods can be generalized beyond its original scope. The method includes two complementary stages, namely decomposition and reconstruction. The first stage decomposes mixed signals in eigen-subspaces, selects and groups the principal components according to their contributions to wind noise and wanted signals in the singular spectrum domain. The second stage is used to reconstruct the signals back to the time domain, resulting in the separation of wind noise and wanted signals. Following a brief review of the wind noise removal problem, this paper presents the algorithm and some experimental results, and discusses the potentials of the singular spectrum analysis for microphone wind noise reduction.
机译:风噪声是户外麦克风信号采集的主要问题之一。由于风噪声的宽带性和时变性,因此很难对其进行过滤和去除。本文提出使用奇异频谱分析来解决麦克风风噪声去除和/或分离的问题。本文是从在智能城市应用和音景监视中部署室外声音感应时减少麦克风风噪声的背景介绍的。但是可以将概念和方法推广到其原始范围之外。该方法包括两个互补阶段,即分解和重构。第一阶段分解本征子空间中的混合信号,根据其对风噪声和奇异谱域中有用信号的贡献,选择和分组主分量。第二阶段用于将信号重构回时域,从而将风噪声和有用信号分离。在简要回顾了风噪声消除问题之后,本文介绍了该算法和一些实验结果,并讨论了奇异频谱分析在降低麦克风风噪声方面的潜力。

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