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Single-channel speech dereverberation based on block-wise weighted prediction error and nonnegative matrix factorization

机译:基于逐块加权预测误差和非负矩阵分解的单通道语音去混响

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This paper proposes a speech dereverberation method based on a block-wise weighted prediction error (BWPE) method and nonnegative matrix factorization (NMF). The proposed BWPE method iteratively estimates late reverberation using maximum likelihood (ML) estimation in a block-wise manner. To ensure consistent de-reverberation performance over time, a forgetting factor is applied on intermediate estimates. Thus, the recent statistics of the signal are emphasized during the block-wise processing. In addition, the NMF-based source separation method is applied to reduce early reverberation that remains in the signal processed by the proposed BWPE method. The performance of the proposed method is compared with that of the conventional weighted prediction error (WPE) method by measuring the Segmental signal-to-noise ratio (SSNR). It is shown from the comparison that the proposed method achieves a higher SSNR than the conventional method. Moreover, the proposed method can be implemented in a real-time audio recording device with an algorithmic delay of 20ms.
机译:本文提出了一种基于块加权加权预测误差(BWPE)方法和非负矩阵分解(NMF)的语音去混响方法。提出的BWPE方法使用最大似然(ML)估计以逐块方式迭代估计后期混响。为了确保随着时间的推移去混响性能始终如一,将遗忘因子应用于中间估计。因此,在逐块处理期间,信号的最新统计被强调。另外,基于NMF的信号源分离方法被应用来减少早期混响,该混响保留在通过所提出的BWPE方法处理的信号中。通过测量分段信噪比(SSNR),将本方法的性能与常规加权预测误差(WPE)方法的性能进行了比较。从比较中可以看出,与传统方法相比,该方法具有更高的信噪比。而且,所提出的方法可以在具有20ms的算法延迟的实时音频记录设备中实现。

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