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A Unified Approach for the Identification of Wiener, Hammerstein, and Wiener–Hammerstein Models by Using WH-EA and Multistep Signals

机译:通过使用WH-EA和MultiSep信号识别维纳,Hammerstein和Wiener-Hammerstein模型的统一方法

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Wiener, Hammerstein, and Wiener–Hammerstein structures are useful for modelling dynamic systems that exhibit a static type nonlinearity. Many methods to identify these systems can be found in the literature; however, choosing a method requires prior knowledge about the location of the static nonlinearity. In addition, existing methods are rigid and exclusive for a single structure. This paper presents a unified approach for the identification of Wiener, Hammerstein, and Wiener–Hammerstein models. This approach is based on the use of multistep excitation signals and WH-EA (an evolutionary algorithm for Wiener–Hammerstein system identification). The use of multistep signals will take advantage of certain properties of the algorithm, allowing it to be used as it is to identify the three types of structures without the need for the user to know a priori the process structure. In addition, since not all processes can be excited with Gaussian signals, the best linear approximation (BLA) will not be required. Performance of the proposed method is analysed using three numerical simulation examples and a real thermal process. Results show that the proposed approach is useful for identifying Wiener, Hammerstein, and Wiener–Hammerstein models, without requiring prior information on the type of structure to be identified.
机译:Wiener,Hammerstein和Wiener-Hammerstein结构对于建模静态型非线性的动态系统非常有用。可以在文献中找到许多识别这些系统的方法;然而,选择方法需要关于静态非线性的位置的先验知识。此外,现有方法是单一结构的刚性和排他性。本文介绍了统一识别维纳,Hammerstein和Wiener-Hammerstein模型的统一方法。这种方法是基于多步骤励磁信号和WH-EA的使用(Wiener-Hammerstein系统识别的进化算法)。使用MultiSep信号将利用算法的某些属性,允许它用作识别三种类型的结构,而无需用户知道先验过程结构。另外,由于并非所有过程可以用高斯信号激励,因此不需要最佳的线性近似(BLA)。使用三个数值模拟实施例和真正的热过程分析所提出的方法的性能。结果表明,该方法可用于识别维也纳,Hammerstein和Wiener-Hammerstein模型,而无需以前的信息有关要识别的结构类型的信息。

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