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A prior knowledge-based noise reduction method with dual microphones

机译:基于现有技术的双麦克风降噪方法

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In this paper, a noise reduction method with dual microphones, based on the prior knowledge, is proposed to reduce the residual noise especially in the period of target speech absence (TSA). First, two cases, i.e. target speech presence and target speech absence were modeled by Gaussian mixture model (GMM), respectively. Then, we calculated the frame-based target speech present probability (TSPP) using Bayesian classification. Finally, a mask filter was presented by modifying the gain function of the improved phase-error based filter (IPBF) method using TSPP. Simulation results show that the proposed method outperforms the reference methods and could reduce noise effectively, particularly in the period of TSA.
机译:在本文中,基于现有知识,提出了一种具有双麦克风的降噪方法,以减少残留噪声,尤其是在目标语音缺失(TSA)期间。首先,分别通过高斯混合模型(GMM)对目标语音存在和目标语音缺失两种情况进行建模。然后,我们使用贝叶斯分类法计算了基于帧的目标语音存在概率(TSPP)。最后,通过使用TSPP修改改进的基于相位误差的滤波器(IPBF)方法的增益函数,提出了一种掩模滤波器。仿真结果表明,该方法优于参考方法,可以有效降低噪声,尤其是在TSA期间。

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