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A new mask-based objective measure for predicting the intelligibility of binary masked speech

机译:一种新的基于掩码的客观度量,用于预测二进制掩蔽语音的清晰度

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Mask-based objective speech-intelligibility measures have been successfully proposed for evaluating the performance of binary masking algorithms. These objective measures were computed directly by comparing the estimated binary mask against the ground truth ideal binary mask (IdBM). Most of these objective measures, however, assign equal weight to all time-frequency (T-F) units. In this study, we propose to improve the existing mask-based objective measures by weighting each T-F unit according to its target or masker loudness. The proposed objective measure shows significantly better performance than two other existing mask-based objective measures.
机译:已经成功地提出了基于掩模的客观语音可理解性度量,以评估二进制掩模算法的性能。通过将估计的二进制掩码与地面真实理想二进制掩码(IdBM)进行比较,可以直接计算这些客观度量。但是,大多数这些客观指标都为所有时频(T-F)单位分配了相等的权重。在这项研究中,我们建议通过根据目标或掩蔽者的响度对每个T-F单元加权来改善现有的基于掩蔽的客观测量。所提出的目标度量比其他两个现有的基于掩码的客观度量显示出明显更好的性能。

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