具有Bouc-Wen迟滞输入非线性的Hammerstein系统参数辨识

A. Radouane, T. Ahmed-Ali, F. Giri
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引用次数: 6

摘要

研究了存在微分滞后非线性的Hammerstein系统辨识问题。识别过程基于采样的输出测量,并提供允许采样周期的上界。识别方法设计中的一个关键思想是,在存在特定类型的周期激励时,迟滞元素假定为线性参数化。然后,一个线性参数化表示,涉及一组集总参数,可以关联到整个Hammerstein系统。使用混合自适应观测器对这些集总参数进行一致估计是可能的。最后,利用矩阵奇异值分解和非线性最小二乘估计实现了系统参数的真实恢复。
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Parameter identification of Hammerstein systems with Bouc-Wen hysteresis input nonlinearity*
The problem of Hammerstein system identification is addressed in presence of a differential hysteresis nonlinearity. The identification process is based on sampled output measurements and an upper bound on the allowed sampling period is provided. One key idea in the identification method design is that the hysteresis element assumes a linear parameterization in presence of a specific class of periodic excitations. Then, a linearly parameterized representation, involving a set of lumped parameters, can be associated to the whole Hammerstein system. The consistent estimation of these lumped parameters is shown to be possible using a hybrid adaptive observer. Finally, the recovery of the true system parameters is achieved using several tools including matrix SVD and nonlinear least-squares estimators.
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