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Ego Noise Reduction for Hose-Shaped Rescue Robot Combining Independent Low-Rank Matrix Analysis and Multichannel Noise Cancellation

机译:结合独立的低阶矩阵分析和多通道噪声消除技术的软管形救援机器人自我噪声降低

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In this paper, we present an ego noise reduction method for a hose-shaped rescue robot, developed for search and rescue operations in large-scale disasters. It is used to search for victims in disaster sites by capturing their voices with its microphone array. However, ego noises are mixed with voices, and it is difficult to differentiate them from a call for help from a disaster victim. To solve this problem, we here propose a two-step noise reduction method involving the following: (1) the estimation of both speech and ego noise signals from observed multichannel signals by multichannel nonnegative matrix factorization (NMF) with the rank-1 spatial constraint, and (2) the application of multichannel noise cancellation to the estimated speech signal using reference signals. Our evaluations show that this approach is effective for suppressing ego noise.
机译:在本文中,我们提出了一种软管形救援机器人的自我降噪方法,该方法是针对大规模灾难中的搜救行动而开发的。它用于通过麦克风阵列捕获他们的声音来搜索灾难现场的受害者。但是,自我的声音混杂着声音,很难将其与灾难受害者的求助声区分开。为了解决这个问题,我们在这里提出一种两步降噪方法,包括以下步骤:(1)通过秩为1的空间约束的多通道非负矩阵分解(NMF),从观察到的多通道信号中估计语音和自我噪声信号(2)使用参考信号将多通道噪声消除应用于估计的语音信号。我们的评估表明,这种方法可有效抑制自我噪音。

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