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Journal ArticleDOI

Iterative learning control for discrete-time systems with exponential rate of convergence

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TLDR
An algorithm for iterative learning control is proposed based on an optimisation principle used by other authors to derive gradient-type algorithms and has potential benefits which include realisation in terms of Riccati feedback and feedforward components.
Abstract
An algorithm for iterative learning control is proposed based on an optimisation principle used by other authors to derive gradient-type algorithms. The new algorithm is a descent algorithm and has potential benefits which include realisation in terms of Riccati feedback and feedforward components. This realisation also has the advantage of implicitly ensuring automatic step-size selection and hence guaranteeing convergence without the need for empirical choice of parameters. The algorithm achieves a geometric rate of convergence for invertible plants. One important feature of the proposed algorithm is the dependence of the speed of convergence on weight parameters appearing in the norms of the signals chosen for the optimisation problem.

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Journal ArticleDOI

Iterative learning controllers for discrete-time large-scale systems to track trajectories with distinct magnitudes

TL;DR: In this paper a set of iterative learning controllers are de-centrally embedded into the procedure of the steady-state optimization, which generates upgraded sequential control signals and thus improves the transient performance of the discrete-time large-scale systems.
Journal ArticleDOI

Brief paper: Novel iterative learning controls for linear discrete-time systems based on a performance index over iterations

TL;DR: An optimal iterative learning control (ILC) is proposed to optimize an accumulative quadratic performance index in the iteration domain for the nominal dynamics of linear discrete-time systems.
Proceedings ArticleDOI

A Q, L factorization of Norm-Optimal Iterative Learning Control

TL;DR: The norm-optimal iterative learning control problem for discrete-time linear multiinput, multioutput systems is considered and it is shown that this solution can always be factored into a Q,L form, which is popularized with frequency domain ILC designs.
Proceedings ArticleDOI

Fast norm-optimal iterative learning control for industrial applications

TL;DR: A revised version, fast norm-optimal iterative learning control is proposed which is significantly simpler and faster to implement and is tested both in simulation and in practice on a three axis industrial gantry robot.
Journal ArticleDOI

Estimation-based norm-optimal iterative learning control

TL;DR: The standard norm-optimal ILC control law for linear systems is introduced and the iterative learning control method improves performance of systems that repeat the same task several times.
References
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Numerical recipes in C

TL;DR: The Diskette v 2.06, 3.5''[1.44M] for IBM PC, PS/2 and compatibles [DOS] Reference Record created on 2004-09-07, modified on 2016-08-08.
Book

Linear systems

Book

Optimization by Vector Space Methods

TL;DR: This book shows engineers how to use optimization theory to solve complex problems with a minimum of mathematics and unifies the large field of optimization with a few geometric principles.
Book

Optimal Control

TL;DR: Reading optimal control frank l lewis solution manual ebook pdf 2019 is extremely useful because you could get enough detailed information in the book technology has.
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