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Modifying the normalized covariance metric measure to account for nonlinear distortions introduced by noise-reduction algorithms

机译:修改归一化协方差度量度量以考虑由降噪算法引入的非线性失真

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摘要

In this study, two methods are proposed to modify the normalized covariance metric (NCM) measure to reduce the effects of gain-induced nonlinear distortions introduced by most noise-suppression algorithms. Considering that the gain-induced distortions behave differently dependent on the signal-to-noise ratio between the noise-reduced speech and the noise, the first approach introduces a penalty factor involving this ratio in the modified NCM measure. The second approach deemphasizes segments marked with amplification distortions that contribute less to intelligibility via adaptive thresholding. Significantly higher correlations with intelligibility scores were obtained from the modified NCM measures compared with the original NCM measures.
机译:在这项研究中,提出了两种方法来修改标准化协方差度量(NCM)度量,以减少大多数噪声抑制算法引入的增益引起的非线性失真的影响。考虑到增益引起的失真的行为取决于降噪后的语音与噪声之间的信噪比,因此第一种方法在改进的NCM度量中引入了一个涉及该比率的惩罚因子。第二种方法不强调标记有放大失真的片段,这些片段通过自适应阈值处理对清晰度的贡献较小。与原始NCM度量相比,修改后的NCM度量与可懂度得分的相关性更高。

著录项

  • 作者

    Chen F; Hu YI;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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