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Improving Robustness of Codebook-Based Noise Estimation Approaches With Delta Codebooks

机译:使用Delta码本提高基于码本的噪声估计方法的鲁棒性

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We present a new codebook-based speech enhancement approach which is able to increase robustness of conventional codebook-based approaches against model mismatch and unknown noise types. This is achieved by training only the difference between the actual noise and a robust estimate (e.g., obtained by minimum statistics or recursive minimum tracking) in the cepstral domain instead of the noise itself. The noise codebook is then generated by shifting the so obtained delta-codebook by the cepstral representation of a robust noise estimate. We use the recursive minimum tracking approach as robust estimate. It is thus guaranteed that the robust estimate is also a valid estimate of the codebook-based algorithm. Consequently, the codebook-based algorithm inherits the robustness from the recursive minimum tracking approach. Objective and subjective experiments show that the proposed method yields a consistent quality improvement over the basic codebook-based approach and recursive minimum tracking.
机译:我们提出了一种新的基于码本的语音增强方法,该方法能够提高传统的基于码本的方法针对模型失配和未知噪声类型的鲁棒性。这是通过仅在倒谱域中训练实际噪声与鲁棒估计(例如,通过最小统计或递归最小跟踪获得)之间的差而不是噪声本身来实现的。然后通过将如此获得的增量码本移位鲁棒噪声估计的倒谱表示来生成噪声码本。我们使用递归最小跟踪方法作为鲁棒估计。因此,保证了鲁棒估计也是基于码本算法的有效估计。因此,基于代码本的算法从递归最小跟踪方法继承了鲁棒性。客观和主观实验表明,与基于基本密码本的方法和递归最小跟踪相比,所提出的方法可产生一致的质量改进。

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