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A Variable Error Data Normalized Step-Size LMS Adaptive Filter Algorithm: Analysis and Simulations

机译:可变误差数据归一化步长LMS自适应滤波算法:分析与仿真

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摘要

This paper investigates noise reduction performance and performs convergence analysis of a Variable Error Data Normalized Step-Size Least Mean Square (VEDNSS LMS) algorithm. Adopting VEDNSS LMS provides fast convergence at early stages of adaptation while ensuring small final misadjustment. An analysis of convergence and steady-state performance for zero-mean Gaussian inputs is provided. Simulation results comparing the proposed algorithm to existing algorithms indicate its superior performance under various noise and frequency environments.
机译:本文研究了降噪性能,并对可变误差数据归一化步长最小均方(VEDNSS LMS)算法进行了收敛分析。采用VEDNSS LMS可在适应的早期阶段快速收敛,同时确保较小的最终失调。提供了零均值高斯输入的收敛性和稳态性能分析。仿真结果比较了该算法与现有算法,表明了该算法在各种噪声和频率环境下的优越性能。

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