Iterative learning control for linear generalized distributed parameter system

被引:0
|
作者
Yingjun Zhang
Yinghui Li
Mengji Chen
机构
[1] Air Force Engineering University,Aeronautics and Astronautics Engineering Institute
[2] Hechi University,School of Physics and Electrical Engineering
来源
关键词
Generalized distributed parameter system; Iterative learning control; PD-type learning law;
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学科分类号
摘要
In this paper, we use the iterative learning control algorithm to deal with generalized distributed parameter system with parabolic type which described by generalized partial differential equation. Because of the particularity of the generalized system, we usually need generalized value decomposition, but the algorithm we proposed in this paper does not need to consider the impulsive solution of the generalized system, so it can simplify the calculation process. A novel generalized theoretical result is presented by using the PD-type learning law under some assumptions. The convergence conditions of algorithm are established. By the basic generalized theory, matrix theory and mapping principle, the paper gives rigorous convergence proof of the algorithm to ensure the tracking error is convergent in L2 norm. Finally, we use an example to verify the validity of the new proposed algorithm. Through this paper, we can do further study and discuss the iterative learning algorithm for generalized distributer parameter system in the future.
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页码:4503 / 4512
页数:9
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