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首页> 外文期刊>IEEE Transactions on Signal Processing >A computationally efficient and interference tolerant nonparametric algorithm for LTI system identification based on higher order cyclostationarity
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A computationally efficient and interference tolerant nonparametric algorithm for LTI system identification based on higher order cyclostationarity

机译:基于高阶循环平稳性的LTI系统辨识的高效计算和容错非参数算法

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摘要

A new nonparametric algorithm for the identification of linear time-invariant systems is proposed. The method is based on the cyclic correlations of the input and output signals with a nonlinear transformation of the input signal. Consequently, although it exploits the higher order cyclostationarity properties of the input and output signals, its computational complexity is comparable with that of methods based on second-order statistics. The proposed estimator of the system transfer function is inherently immune to the presence of noise and interference on both input and output signal measurements and turns out to be asymptotically unbiased and consistent. Moreover, bias and variance of the estimate exhibit a rate of convergence to zero equal to that of estimates based on second-order statistics. Finally, simulation results show that the proposed algorithm significantly outperforms, in terms of both bias and variance of the estimates, several nonparametric identification algorithms previously presented in the literature.
机译:提出了一种用于辨识线性时不变系统的新非参数算法。该方法基于输入和输出信号的循环相关以及输入信号的非线性变换。因此,尽管它利用了输入和输出信号的高阶循环平稳性,但其计算复杂度却与基于二阶统计量的方法相当。拟议的系统传递函数估计器固有地不受输入和输出信号测量中存在噪声和干扰的影响,并且证明它是渐近无偏的和一致的。此外,估计的偏差和方差表现出的收敛速度为零,该速度等于基于二阶统计量的估计速度。最后,仿真结果表明,就估计的偏差和方差而言,该算法明显优于文献中先前提出的几种非参数识别算法。

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