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A New Proportionate Adaptive Filtering Algorithm with Coefficient Reuse and Robustness Against Impulsive Noise

机译:一种新的相应滤波算法,其系数重复利用和鲁棒性对抗冲动噪声

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An adaptive algorithm should ideally present high convergence rate, good steady-state performance, and robustness against impulsive noise. Few algorithms can simultaneously meet these requirements. This paper proposes a local and deterministic optimization problem whose solution gives rise to an adaptive algorithm that presents a higher convergence rate in the identification of sparse systems due to the use of the proportionate adaptation technique. In addition, a correntropy-based cost function is employed in order to enhance its robustness against non-Gaussian noise. Finally, the adoption of coefficient reuse approach results in a good system identification performance in steady-state conditions, especially in low SNR scenarios.
机译:适应性算法应理想地呈现高收敛速率,良好的稳态性能和抗冲击噪声的鲁棒性。很少有算法可以同时满足这些要求。本文提出了局部和确定性优化问题,其解决方案引起了一种自适应算法,其由于使用比例适应技术而在臭稀疏系统的识别中提出了更高的收敛速率。此外,采用了基于正文的成本函数,以提高其对非高斯噪声的鲁棒性。最后,通过系数重用方法的采用导致稳态条件下的良好系统识别性能,特别是在低SNR场景中。

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