Chance-constrained quasi-convex optimization with application to data-driven switched systems control

被引:0
作者
Berger, Guillaume O. [1 ]
Jungers, Raphael M. [1 ]
Wang, Zheming [1 ]
机构
[1] UCLouvain, Inst Informat & Commun Technol Elect & Appl Math, Dept Engn Math, ICTEAM INMA, B-1348 Louvain, Belgium
来源
LEARNING FOR DYNAMICS AND CONTROL, VOL 144 | 2021年 / 144卷
关键词
Data-driven control; chance-constrained optimization; quasi-convex programming; switched systems; SCENARIO APPROACH;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
We study quasi-convex optimization problems, where only a subset of the constraints can be sampled, and yet one would like a probabilistic guarantee on the obtained solution with respect to the initial (unknown) optimization problem. Even though our results are partly applicable to general quasi-convex problems, in this work we introduce and study a particular subclass, which we call "quasi-linear problems". We provide optimality conditions for these problems. Thriving on this, we extend the approach of chance-constrained convex optimization to quasi-linear optimization problems. Finally, we show that this approach is useful for the stability analysis of black-box switched linear systems, from a finite set of sampled trajectories. It allows us to compute probabilistic upper bounds on the JSR of a large class of switched linear systems.
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页数:13
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