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Filtering based multi-innovation stochastic gradient identification algorithm for multivariable nonlinear equation-error autoregressive systems

机译:多变量非线性方程误差自回归系统的基于滤波的多创新随机梯度识别算法

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This paper considers the parameter estimation problem of the multivariable Hammerstein systems with colored noise. By means of the adaptive filtering technique, a new adaptive filtering configuration consisting of a noise whitening filter and a recursive algorithm is developed. Then an adaptive filtering based multi-innovation stochastic gradient (F-MISG) identification algorithm is presented. The simulation results show that the proposed F-MISG algorithm has a higher parameter estimation accuracy and a faster convergence rate than the multi-innovation stochastic gradient algorithm for the same innovation length.
机译:本文考虑了有色噪声的多变量Hammerstein系统的参数估计问题。借助于自适应滤波技术,开发了一种由噪声白化滤波器和递归算法组成的新的自适应滤波配置。提出了一种基于自适应滤波的多创新随机梯度(F-MISG)辨识算法。仿真结果表明,与相同长度的多创新随机梯度算法相比,所提出的F-MISG算法具有更高的参数估计精度和更快的收敛速度。

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