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ADAPTIVE ITERATIVE LEARNING CONTROL OF ROBOTIC SYSTEMS USING BACKSTEPPING DESIGN

Ying‐Chung Wang, Chiang‐Ju Chien, Chi-Nan Chuang

发表年份
2013
引用次数
6

摘要

In this paper, a backstepping adaptive iterative learning control (AILC) is proposed for robotic systems with repetitive tasks. The AILC is designed to approximate unknown certainty equivalent controller. Finally, we apply a Lyapunov like analysis to show that all adjustable parameters and the internal signals remain bounded for all iterations.

关键词

BacksteppingIterative learning controlControl theory (sociology)Bounded functionAdaptive controlController (irrigation)Computer scienceLyapunov functionControl engineeringControl (management)

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