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IDENTIFICATION OF TIME-VARYING HAMMERSTEIN SYSTEMS USING A BASIS EXPANSION APPROACH

机译:使用基础膨胀方法识别时变的Hammerstein系统

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The Hammerstein model is one of the simplest nonlinear system representations.It consists of a static nonlinear block in series with a dynamic linear block. This paper gives an identification method for time-varying Hammerstein systems: Hammerstein systems in which the parameters of the linear and nonlinear blocks vary as functions of time. The algorithm involves the expansion of the system's time-varying parameters onto finite sets of basis sequences thereby transforming the identification problem into a time-invariant one with respect to the expansion coefficients. Prediction error minimization is then carried out using a separable least squares algorithm to simplify computation and improve numerical conditioning. Results obtained from a simulation study of a time-varying Hammerstein system are presented to demonstrate the performance of the algorithm.
机译:Hammerstein模型是最简单的非线性系统表示之一。它包括与动态线性块串联的静态非线性块组成。本文给出了时变Hammerstein系统的识别方法:HammerSein系统,其中线性和非线性块的参数随时间的函数而变化。该算法涉及将系统的时变参数扩展到有限的基础序列,从而将识别问题转换为相对于扩展系数的时间不变。然后使用可分离的最小二乘算法执行预测误差最小化以简化计算并改善数值调节。提出了一种从仿真研究获得的时变Hammerstein系统获得的结果以证明算法的性能。

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