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New sequential partial update switch-mode noise-constrained NLMS adaptive filtering algorithms

机译:新的顺序部分更新开关模式噪声受限NLMS自适应滤波算法

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The sequential partial update LMS (S-LMS)-based algorithms are efficient adaptive filtering algorithms for reducing the high arithmetic complexity in acoustic and related applications. A limitation of the algorithms is the degraded convergence speed. In this paper, a new family of sequential partial update switch-mode noise-constrained NLMS (S-SNC-NLMS) algorithms is proposed. These algorithms use a new variable step-size (VSS) method to increase the convergence speed of the traditional partial update algorithms while achieving the same steady-state excess mean square error (EMSE). It employs a maximum step-size to improve the initial convergence and exploits the prior knowledge of the additive noise variance as in the noise-constrained (NC) approach near convergence. The mean and mean square convergence behaviors of these new switch mode algorithms are studied to characterize its convergence condition and steady-state EMSE. Based on the theoretical results, an automatic threshold selection method for mode switching is also developed. Computer simulations are conducted to verify the theoretical results and effectiveness of the proposed algorithms.
机译:基于顺序部分更新LMS(S-LMS)的算法是有效的自适应滤波算法,用于减少声学和相关应用程序中的高算术复杂性。该算法的局限性是收敛速度下降。本文提出了一种新的顺序局部更新开关模式噪声约束NLMS(S-SNC-NLMS)算法家族。这些算法使用新的可变步长(VSS)方法来提高传统部分更新算法的收敛速度,同时实现相同的稳态超额均方误差(EMSE)。它采用最大步长大小来改善初始收敛,并利用加性噪声方差的先验知识,如接近收敛的噪声约束(NC)方法一样。研究了这些新的开关模式算法的均方和均方收敛行为,以表征其收敛条件和稳态EMSE。基于理论结果,还开发了一种用于模式切换的自动阈值选择方法。进行计算机仿真以验证理论结果和所提出算法的有效性。

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