Bias-Compensated MCSE Algorithm for Widely Linear Complex-Valued Adaptive Filtering with Noisy Inputs

Si-Syuan Huang, Guobing Qian
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Abstract

In this paper, based on minimum complex Shannon entropy (MCSE), a novel widely linear complex-valued estimated-input MCSE (WLC-EIMCSE) algorithm is proposed, which can not only make unbiased estimation in the environment where the input signal has noise, but also show superiority over WLC-EILMS and WLC-EIMCCC in the non-Gaussian noise whose output noise is bimodal Gaussian distribution with non-zero mean. The convergence of the proposed algorithm is analyzed, and the simulation of system identification verifies its superiority.
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噪声输入下宽线性复值自适应滤波的偏置补偿MCSE算法
本文基于最小复香农熵(MCSE),提出了一种新的广义线性复值估计输入MCSE (WLC-EIMCSE)算法,该算法不仅能在输入信号有噪声的环境下进行无偏估计,而且在输出噪声为非零均值的双峰高斯分布的非高斯噪声情况下,也比WLC-EILMS和WLC-EIMCCC具有优越性。分析了该算法的收敛性,并通过系统辨识仿真验证了该算法的优越性。
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