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A Two-step NMF Based Algorithm for Single Channel Speech Separation

机译:一种用于单通道语音分离的两步NMF算法

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Nonnegative Matrix Factorization (NMF) has become an increasingly popular method in the field of non-stationary speech denoising. However most NMF-based algorithms assume prior knowledge about the background noise which is often not available in time-varying and mobile environments. In this paper, we propose a two-step NMF based speech-noise separation algorithm to address this issue. This algorithm takes the outcome of the first NMF separation as the dataset to train the basis vectors for the background noise, which will be used for the second-step NMF separation with fixed speech and noise basis vectors. Experimental results show that the proposed algorithm could achieve better results than other NMF algorithms for speech-noise separation.
机译:非负矩阵分解(NMF)已成为非固定语音去噪的越来越受欢迎的方法。然而,大多数基于NMF的算法假设了关于背景噪声的知识,这些噪声通常不可用的时变和移动环境。在本文中,我们提出了一种基于两步的基于NMF的语音噪声分离算法来解决这个问题。该算法将第一NMF分离的结果作为数据集训练了背景噪声的基础向量,其将用于具有固定语音和噪声基向量的第二步NMF分离。实验结果表明,该算法可以实现比其他NMF算法的更好结果,用于语音噪声分离。

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