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A variable step size LMS adaptive filtering algorithm based on L2 norm

机译:基于L2范数的变步长LMS自适应滤波算法

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On the basis of the traditional LMS algorithm and several improved algorithms, a variable step size LMS algorithm is proposed in this paper, which is based on the L2 norm. In this algorithm, a new nonlinear relationship between the step size and the error signal is established by introducing the input signal into the step size iteration function, so that it can reflect the impact of input signal on performance. Meanwhile, the smoothing factor is added to make the step size determined by current error value and also previous error, bringing it a certain noise immunity. In this paper, theoretical analysis and simulation experiments are conducted to compare the new algorithm with other existing algorithms from convergence speed, tracking performance and steady state mean square error (MSE). According to the simulation results, the proposed algorithm has a higher speed of convergence and better performance on tracking than those algorithms, whereas the steady state MSE remains the same as others.
机译:在传统的LMS算法和几种改进算法的基础上,提出了一种基于L2范数的变步长LMS算法。在该算法中,通过将输入信号引入步长迭代函数中,建立了步长与误差信号之间的新的非线性关系,从而可以反映输入信号对性能的影响。同时,添加平滑因子以使步长由当前误差值以及先前误差确定,从而使其具有一定的抗干扰性。本文进行了理论分析和仿真实验,从收敛速度,跟踪性能和稳态均方误差(MSE)方面对新算法与现有算法进行了比较。仿真结果表明,该算法具有较高的收敛速度和跟踪性能,而稳态MSE仍然与其他算法相同。

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