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On convergence analysis of an identification algorithm for Hammerstein-Wiener systems with unknown time-delay

机译:时滞未知的Hammerstein-Wiener系统辨识算法的收敛性分析

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A Hammerstein-Wiener model with time delay is a specific class of nonlinear time delay systems where the time delay which involves the system input and the parameters are unknown and need to be estimated using input-output data. The main difficulty that has been encountered in this identification problem is the additional nonlinearity due to the presence of the time delay in the criterion to be minimized. As a solution of this problem, an alternative approach is applied, which consists in estimating separately the unknown parameters and time delay. However, the conventional optimization techniques are not directly applicable. Hence, we formulate the problem of estimating the unknown time delay as a continuous relaxation problem and we then apply the gradient approach to estimate all unknown variables. Furthermore, by using the martingale convergence theorem, the convergence analysis of the proposed algorithm is treated. A numerical example is offered to demonstrate the effectiveness of the proposed method.
机译:具有时滞的Hammerstein-Wiener模型是一类特殊的非线性时滞系统,其中涉及系统输入和参数的时延是未知的,需要使用输入输出数据进行估计。在该识别问题中遇到的主要困难是由于要最小化的准则中存在时间延迟而导致的附加非线性。作为此问题的解决方案,使用了一种替代方法,该方法包括分别估计未知参数和时间延迟。但是,常规的优化技术不能直接应用。因此,我们将估计未知时间延迟的问题公式化为连续松弛问题,然后应用梯度方法来估计所有未知变量。此外,利用using收敛定理,对算法进行了收敛性分析。数值算例表明了该方法的有效性。

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