非线性状态空间模型辨识的几种初始化方法比较

A. V. Mulders, L. Vanbeylen
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引用次数: 4

摘要

在许多测量应用中,需要高精度的模型。线性模型可能不能以令人满意的方式表示所测量的现象。在非线性动态模型中,非线性状态空间模型由于其良好的建模能力而成为一种有吸引力的选择。为了获得该模型的最优结果,非凸优化问题的良好初始估计至关重要。我们表明经典方法(通过最佳线性近似)可能会陷入局部最小值,并且我们提出了一些替代的,最近开发的初始化方法(非线性模型)。通过仿真算例对两种算法的性能进行了比较,并对结果(包括时间效率和灵活性)进行了讨论。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparison of some initialisation methods for the identification of nonlinear state-space models
In many measurement applications, highly accurate models are needed. Linear models can fail to represent the measured phenomena in a satisfactory way. In the class of nonlinear dynamic models, a nonlinear state-space model is an attractive option due to its good modelling capabilities. In order to obtain optimal results with this model, good initial estimates for the nonconvex optimisation problem are crucial. We show that the classical approach (via the best linear approximation) can get trapped in local minima and we present some alternative, recently developed, initialisation methods (nonlinear models). A simulation example is used to compare their performance, and the results (including time-efficiency and flexibility) are discussed.
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