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Analysis of adaptive threshold nonlinear correlation algorithm

机译:自适应阈值非线性相关算法分析

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This paper proposes an adaptation algorithm named Adaptive Threshold Nonlinear Correlation Algorithm (ATNCA) which makes adaptive filters robust against two types of impulse noise: impulsive observation noise at the filter output and impulse noise at the filter input. Analysis of the ATNCA is developed to theoretically calculate filter convergence behavior. Through experiments, we demonstrate the effectiveness of the proposed algorithm in realizing fast convergent and robust adaptive filters in impulsive noise environments. Good agreement between simulated and theoretical filter convergence curves shows the validity of the analysis.
机译:本文提出了一种称为自适应阈值非线性相关算法(ATNCA)的自适应算法,该算法可使自适应滤波器对两种类型的脉冲噪声具有鲁棒性:滤波器输出处的脉冲观测噪声和滤波器输入处的脉冲噪声。对ATNCA的分析旨在从理论上计算滤波器的收敛行为。通过实验,我们证明了该算法在脉冲噪声环境下实现快速收敛且鲁棒的自适应滤波器的有效性。模拟滤波器收敛曲线与理论滤波器收敛曲线之间的良好一致性表明了分析的有效性。

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