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Affine-Projection-Like M-Estimate Adaptive Filter for Robust Filtering in Impulse Noise

机译:仿射投影的M估计自适应滤波器,用于脉冲噪声的鲁棒滤波

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摘要

In this brief, an affine-projection-like M-estimate (APLM) algorithm is proposed for robust adaptive filtering. To eliminate the adverse effects of impulsive noise in case of the impulse interference environment on the filter weight updates. The proposed APLM algorithm uses a robust cost function based on M-estimate and is derived by using the unconstrained minimization method. More importantly, the APLM algorithm has lower computational complexity than the M-estimate affine projection algorithm, since the direct or indirect inversion of the input signal matrix does not need to be calculated. In order to further improve the performance of the APLM algorithm, namely convergence speed and steady-state misalignment, the convex combination of the APLM (C-APLM) algorithm is presented. Simulation results verify that the proposed APLM and C-APLM algorithms are effective in system identification and echo cancellation scenarios. It also demonstrates that the C-APLM algorithm improves the filter performance in terms of the convergence speed and the normalized mean squared deviation in the presence of impulse noise.
机译:在此简述中,提出了一种用于鲁棒的自适应滤波的仿射投影M估计(APLM)算法。在滤波器重量更新的脉冲干扰环境下消除冲动噪声的不利影响。所提出的APLM算法使用基于M估计的强大成本函数,并且通过使用无约束的最小化方法导出。更重要的是,APLM算法的计算复杂性低于M估计仿射投影算法,因为不需要计算输入信号矩阵的直接或间接反转。为了进一步提高APLM算法的性能,即收敛速度和稳态未对准,呈现了APLM(C-APLM)算法的凸组合。仿真结果验证所提出的APLM和C-APLM算法在系统识别和回声消除方案中是有效的。它还表明C-APLM算法在收敛速度和脉冲噪声存在下的归一化平均平方偏差方面提高了滤波器性能。

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