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Complex-valued least mean Kurtosis adaptive filter algorithm

机译:复数值最小均值峰度自适应滤波器算法

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In this study, a complex-valued least mean Kurtosis (CLMK) adaptive filter algorithm is designed for processing complex-valued signals. The performance of the designed algorithm is tested on a complex-valued system identification and compared the complex-valued least mean square (CLMS) and complex-valued normalized least mean square (CNLMS) algorithms. As a result, the CLMK algorithm shows a higher performance than the other algorithms in terms of the convergence rate, mean square error (MSE) and mean square deviation (MSD).
机译:在这项研究中,复数值最小均值峰度(CLMK)自适应滤波器算法被设计用于处理复数值信号。在复数值系统识别上测试了设计算法的性能,并比较了复数值最小均方(CLMS)和复数值归一化最小均方(CNLMS)算法。结果,就收敛速度,均方误差(MSE)和均方差(MSD)而言,CLMK算法显示出比其他算法更高的性能。

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