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Reconstruction techniques for improving the perceptual quality of binary masked speech

机译:改善二进制掩蔽语音感知质量的重构技术

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摘要

This study proposes an approach to improve the perceptual quality of speech separated by binary masking through the use of reconstruction in the time-frequency domain. Non-negative matrix factorization and sparse reconstruction approaches are investigated, both using a linear combination of basis vectors to represent a signal. In this approach, the short-time Fourier transform (STFT) of separated speech is represented as a linear combination of STFTs from a clean speech dictionary. Binary masking for separation is performed using deep neural networks or Bayesian classifiers. The perceptual evaluation of speech quality, which is a standard objective speech quality measure, is used to evaluate the performance of the proposed approach. The results show that the proposed techniques improve the perceptual quality of binary masked speech, and outperform traditional time-frequency reconstruction approaches.
机译:这项研究提出了一种方法,通过在时频域中进行重构来提高通过二进制掩蔽分隔的语音的感知质量。研究了非负矩阵分解和稀疏重构方法,两者均使用基本矢量的线性组合来表示信号。在这种方法中,分离语音的短时傅立叶变换(STFT)表示为来自纯语音词典的STFT的线性组合。使用深度神经网络或贝叶斯分类器执行分离的二进制掩码。语音质量的感知评估是一种标准的客观语音质量度量,用于评估所提出方法的性能。结果表明,所提出的技术提高了二进制掩蔽语音的感知质量,并且优于传统的时频重构方法。

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