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A Robust, Iteration Dependent Variable Step-Size (RID-VSS) Least-Mean Square (LMS) Adaptive Algorithm

机译:鲁棒,迭代相关的可变步长(RID-VSS)最小均方(LMS)自适应算法

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A robust variable step-size LMS algorithm is proposed. The variable step-size is a weighted running average of the squared error signal which varies as the square of the estimated error changes. The weighting factor ensures stability and convergence. Robustness of the algorithm is achieved through the step-size inherent bounded nature and independence from the initial condition. The algorithm is compared with two benchmark VSS algorithms. Convergence and steady-state behavior of the proposed adaptive filter are analyzed. Simulation for the system identification scenario is carried out and the performance of the proposed algorithm is compared.
机译:提出了一种鲁棒的可变步长LMS算法。可变步长大小是平方误差信号的加权运行平均值,其变化为估计误差的平方。加权因子确保稳定性和收敛性。通过初始固有的有界性质和初始条件的独立性实现了算法的鲁棒性。将算法与两个基准VSS算法进行比较。分析了所提出的自适应滤波器的收敛性和稳态行为。进行了系统识别方案的仿真,并进行了所提出的算法的性能。

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