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Noise reduction using the standard deviation of the time-frequency bin and modified gain function for speech enhancement in stationary and nonstationary noisy environments

机译:使用时间频率箱的标准偏差和用于静止和非间断嘈杂环境的语音增强的标准偏差降噪

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In this paper we propose a new noise reduction algorithm for stationary and nonstationary noisy environments. Our algorithm classifies the speech and noise signal contributions in time-frequency bins, and is not based on a spectral algorithm or a minimum statistics approach. It relies on calculating the ratio of the standard deviation of the noisy power spectrum in time-frequency bins to its normalized time-frequency average. We show that good quality can be achieved for enhancement speech signal by choosing appropriate values for δ{sub}t and δ{sub}f. The proposed method greatly reduces the noise while providing enhanced speech with lower residual noise and somewhat higher signal to noise ratio (SNR) and signal distortion (SIG) scores than conventional methods.
机译:在本文中,我们提出了一种新的降噪算法,用于静止和非间断的嘈杂环境。我们的算法对时频箱中的语音和噪声信号贡献进行了分类,并且不是基于光谱算法或最小统计方法。它依赖于计算噪声功率谱的标准偏差与时频频率的标准偏差与其归一化时间频率平均值的比率。我们表明,通过为Δ{sub} t和Δ{sub} f选择适当的值,可以实现良好的质量来实现增强语音信号。所提出的方法极大地降低了噪声,同时提供具有较低残余噪声的增强语音,并且对噪声比(SNR)略高的信号和信号失真(SIG)得分而不是传统方法。

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