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Masked noise probability-based speech enhancement

机译:基于掩蔽噪声概率的语音增强

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摘要

An optimal approach for enhancing speech signals degraded by uncorrelated stationary additive noise with auditory perception properties is proposed. Based on auditory masking effects, the speech spectra estimates include noisy speech spectra of masked noise and a classical spectral subtraction estimate of unmasked noise. Taking into account the uncertainty of the noise presence, the enhanced speech signal spectra are calculated by a weighted sum of these two estimates and the weights are derived from the masked noise probability (MNP). The performance of the proposed speech enhancement approach has been evaluated with speech distortion and informal listening tests. Comparison with Azirani's method and the short-time spectral amplitude estimate based on minimum mean square error (MMSE-STSA) shows that the speech distortion apparently decreased and the musical noise was suppressed.
机译:提出了一种优化的方法,用于增强具有不相关的平稳加性噪声并具有听觉感知特性的语音信号。基于听觉掩蔽效应,语音频谱估计包括掩蔽噪声的嘈杂语音频谱和未掩蔽噪声的经典频谱减法估计。考虑到噪声存在的不确定性,通过这两个估计值的加权总和来计算增强的语音信号频谱,并且权重是从掩盖噪声概率(MNP)中得出的。所提出的语音增强方法的性能已通过语音失真和非正式聆听测试进行了评估。与Azirani方法和基于最小均方误差(MMSE-STSA)的短时频谱幅度估计的比较表明,语音失真明显减少,音乐噪声得到了抑制。

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