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Composite iterative learning controller design for gradually varying references with applications in an AFM system
作者姓名:FANG Yong-chun  ZHANG Yu-dong  DONG Xiao-kun
基金项目:Foundation item: Projects(61127006, 61325017) supported by the National Natural Science Foundation of China
摘    要:Learning control for gradually varying references in iteration domain was considered in this research, and a composite iterative learning control strategy was proposed to enable a plant to track unknown iteration-dependent trajectories. Specifically, by decoupling the current reference into the desired trajectory of the last trial and a disturbance signal with small magnitude, the learning and feedback parts were designed respectively to ensure fine tracking performance. After some theoretical analysis, the judging condition on whether the composite iterative learning control approach achieves better control results than pure feedback contro! was obtained for varying references. The convergence property of the closed-loop system was rigorously studied and the saturation problem was also addressed in the controller. The designed composite iterative learning control strategy is successfully employed in an atomic force microscope system, with both simulation and experimental results clearly demonstrating its superior performance.

关 键 词:迭代学习控制  控制器设计  原子力显微镜  闭环系统  复合  参考设计  应用  跟踪性能

Composite iterative learning controller design for gradually varying references with applications in an AFM system
FANG Yong-chun,ZHANG Yu-dong,DONG Xiao-kun.Composite iterative learning controller design for gradually varying references with applications in an AFM system[J].Journal of Central South University of Technology,2014(1):180-189.
Authors:FANG Yong-chun  ZHANG Yu-dong  DONG Xiao-kun
Affiliation:Institute of Robotics and Automatic Information System, Nankai University, Tianjin 30007 I, China
Abstract:iterative learning control saturation feedback control feedforward control atomic force microscope
Keywords:iterative learning control  saturation  feedback control  feedforward control  atomic force microscope
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