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Robust Regions of Attraction Generation for State-Constrained Perturbed Discrete-Time Polynomial Systems

Dynamical Systems 2020-05-11 v6

Abstract

In this paper we propose a convex programming based method for computing robust regions of attraction for state-constrained perturbed discrete-time polynomial systems. The robust region of attraction of interest is a set of states such that every possible trajectory initialized in it will approach an equilibrium state while never violating the specified state constraint, regardless of the actual perturbation. Based on a Bellman equation which characterizes the interior of the maximal robust region of attraction as the strict one sub-level set of its unique bounded and continuous solution, we construct a semi-definite program for computing robust regions of attraction. Under appropriate assumptions, the existence of solutions to the constructed semi-definite program is guaranteed and there exists a sequence of solutions such that their strict one sub-level sets inner-approximate and converge to the interior of the maximal robust region of attraction in measure. Finally, we demonstrate the method by two examples.

Keywords

Cite

@article{arxiv.1810.11767,
  title  = {Robust Regions of Attraction Generation for State-Constrained Perturbed Discrete-Time Polynomial Systems},
  author = {Bai Xue and Naijun Zhan and Yangjia Li},
  journal= {arXiv preprint arXiv:1810.11767},
  year   = {2020}
}

Comments

Accepted by IFAC 2020