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首页> 外文期刊>IEEE Transactions on Signal Processing >A fast recursive least squares adaptive second order Volterra filter and its performance analysis
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A fast recursive least squares adaptive second order Volterra filter and its performance analysis

机译:快速递归最小二乘自适应二阶Volterra滤波器及其性能分析

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摘要

A fast, recursive least squares (RLS) adaptive nonlinear filter modeled using a second-order Volterra series expansion is presented. The structure uses the ideas of fast RLS multichannel filters, and has a computational complexity of O(N/sup 3/) multiplications, where N-1 represents the memory span in number of samples of the nonlinear system model. A theoretical performance analysis of its steady-state behaviour in both stationary and nonstationary environments is presented. The analysis shows that, when the input is zero mean and Gaussian distributed, and the adaptive filter is operating in a stationary environment, the steady-state excess mean-squared error due to the coefficient noise vector is independent of the statistics of the input signal. The results of several simulation experiments show that the filter performs well in a variety of situations. The steady-state behaviour predicted by the analysis is in very good agreement with the experimental results.
机译:提出了使用二阶Volterra级数展开建模的快速递归最小二乘(RLS)自适应非线性滤波器。该结构使用快速RLS多通道滤波器的思想,并具有O(N / sup 3 /)乘法的计算复杂度,其中N-1代表非线性系统模型的样本数量中的内存范围。给出了稳态和非稳态环境下其稳态行为的理论性能分析。分析表明,当输入为零均值和高斯分布,并且自适应滤波器在固定环境下运行时,由于系数噪声矢量引起的稳态超均方误差与输入信号的统计量无关。 。几个模拟实验的结果表明,该滤波器在各种情况下均能良好运行。通过分析预测的稳态行为与实验结果非常吻合。

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