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Towards a unified optimal spectral amplitude estimator for speech enhancement in various low-SNR environments

机译:寻求统一的最佳频谱幅度估计器,以在各种低SNR环境中增强语音

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Speech enhancement using a minimum mean-square error short-time spectral amplitude estimator (MMSE-STSA) has been shown to be very effective against stationary uncorrelated additive wide-band noise. In this paper, we show that this approach can also be used to combat narrow-band noise in low-SNR environments. This was accomplished by the integration of an adaptive time varying noise shaping filter (NSF) with the MMSE-STSA algorithm in order to improve the speech enhancement performance by "whitening" the noisy speech signals. Experiments were conducted using a noisy version of speech signals extracted from the TIMIT database. Such experiments demonstrate that the proposed algorithm yields superior performance in comparison with the basic MMSE-STSA algorithm in severe interfering car noise environments for a wide range of SNRs down to -12 dB.
机译:使用最小均方误差短时频谱幅度估计器(MMSE-STSA)进行的语音增强已被证明对平稳不相关的加性宽带噪声非常有效。在本文中,我们证明了这种方法还可以用于在低SNR环境中消除窄带噪声。这是通过将自适应时变噪声整形滤波器(NSF)与MMSE-STSA算法集成在一起来实现的,以便通过“加白”有噪声的语音信号来提高语音增强性能。实验是使用从TIMIT数据库中提取的语音信号的嘈杂版本进行的。这样的实验表明,在严重的干扰性汽车噪声环境中,针对低至-12 dB的宽范围SNR,所提出的算法与基本的MMSE-STSA算法相比,具有更高的性能。

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