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A robust NLMS algorithm with a novel noise modeling based on stationary/nonstationary noise decomposition

机译:基于平稳/非平稳噪声分解的具有新颖噪声模型的鲁棒NLMS算法

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This paper proposes a robust NLMS algorithm with a novel noise modeling based on stationary/nonstationary noise decomposition. The ambient noise including the near-end signal is modeled as a weighted sum of the stationary and the nonstationary components. These components are independently estimated with an appropriate time constant for better accuracy. The estimates are weighted by the stationary/ nonstationary likelihood before summation. The integrated noise estimate controls the coefficient adaptation stepsize such that it is an upward convex function of the reference input with a noise offset for robustness. Evaluations in a fullband and a subband echo cancellation scenarios show that ERLE has been improved by as much as 40 dB over the algorithm with a conventional noise model in both single- and double-talk sections with no double-talk detection.
机译:本文提出了一种基于平稳/非平稳噪声分解的,具有新颖噪声模型的鲁棒NLMS算法。包括近端信号在内的环境噪声被建模为固定和非固定分量的加权和。为了获得更好的精度,可以使用适当的时间常数独立估算这些分量。估算值在求和之前由平稳/非平稳似然加权。集成的噪声估计控制系数自适应步长,以便它是参考输入的向上凸函数,具有用于鲁棒性的噪声偏移。在全频带和子频带回声消除方案中的评估表明,在没有双通话检测的情况下,单通话和双通话段中的ERLE比常规噪声模型的算法提高了40 dB。

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