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Maximum likelihood stochastic gradient estimation for Hammerstein systems with colored noise based on the key term separation technique

机译:基于关键项分离技术的有色噪声Hammerstein系统的最大似然随机梯度估计

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摘要

This paper considers the identification problems of Hammerstein finite impulse response moving average (FIR-MA) systems using the maximum likelihood principle and stochastic gradient method based on the key term separation technique. In order to improve the convergence rate, a maximum likelihood multi-innovation stochastic gradient algorithm is presented. The simulation results show that the proposed algorithms can effectively estimate the parameters of the Hammerstein FIR-MA systems.
机译:基于最大似然原理和基于关键项分离技术的随机梯度方法,研究了哈默斯坦有限冲激响应移动平均(FIR-MA)系统的识别问题。为了提高收敛速度,提出了一种最大似然多创新随机梯度算法。仿真结果表明,该算法可以有效地估计Hammerstein FIR-MA系统的参数。

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