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A speech enhancement algorithm using computational auditory scene analysis with spectral subtraction

机译:一种语音听觉增强算法,采用计算听觉场景分析和频谱减法

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Computational auditory scene analysis (CASA) system is well used in speech enhancement area in recent years. We propose a new system that combines CASA and spectral subtraction to get better enhanced speech. The CASA part consists of the latest method deep neural networks (DNNs). The original way to reconstruct the denoise signal is to use the estimated masks with direct overlap-add method ignoring the information of noise within the frames. In our system, we estimate self-adapted thresholds for each channel by Gaussian Mixture Model from the estimated ratio masks (ERMs) to separate noise and speech of each channel. In this way, we make full use of the information within frames. The results show increase in both objective and subjective evaluation.
机译:近年来,计算听觉场景分析(CASA)系统在语音增强领域得到了很好的应用。我们提出了一个结合了CASA和频谱减法的新系统,以获得更好的语音增强效果。 CASA部分由最新方法深度神经网络(DNN)组成。重建降噪信号的原始方法是使用估计的掩码,并使用直接重叠相加法来忽略帧内的噪声信息。在我们的系统中,我们通过高斯混合模型从估计的比率掩码(ERM)估计每个通道的自适应阈值,以分离每个通道的噪声和语音。这样,我们可以充分利用框架内的信息。结果表明,客观和主观评价都增加了。

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