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A noise spectral estimation method based on VAD and recursive averaging using new adaptive parameters for non-stationary noise environments

机译:一种基于VaD和非平稳噪声环境下新自适应参数的递归平均的噪声谱估计方法

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摘要

A noise spectral estimation method, which is used in spectral suppression noise cancellers, is proposed for highly non-stationary noise environments. Speech and non-speech frames are detected by using the entropy-based voice activity detector (VAD). An adaptive normalization parameter and a variable threshold are newly introduced for the VAD. They are very useful for rapid change in the noise spectrum and power. Furthermore, a recursive averaging method is applied to estimating the noise spectrum in the non-speech frames. In this method, an adaptive smoothing parameter is proposed, based on speech presence probability. Simulations are carried out by using many kinds of noises, including white, babble, car, pink, factory and tank, which are changed from one to the other. The segmental SNR is improved by 2.0 ~3.8dB, and noise spectral estimation error is improved by 3.2 ~ 4.7dB for the white noise and the babble noise, which are changed from one to the other.
机译:提出了一种用于频谱抑制噪声消除器的噪声频谱估计方法,用于高度非平稳噪声环境。语音和非语音帧通过使用基于熵的语音活动检测器(VAD)进行检测。为VAD新引入了自适应归一化参数和可变阈值。它们对于快速改变噪声频谱和功率非常有用。此外,将递归平均方法应用于估计非语音帧中的噪声频谱。在这种方法中,基于语音存在概率,提出了一种自适应平滑参数。通过使用多种噪声来进行仿真,包括白噪声,低沉噪声,汽车噪声,汽车噪声,粉红色噪声,工厂噪声和油箱噪声,这些噪声会相互改变。对于白噪声和杂波噪声,将它们彼此改变,段SNR提高了2.0〜3.8dB,噪声频谱估计误差提高了3.2〜4.7dB。

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