Affiliation:
1. Department of Management, Information and Production Engineering University of Bergamo Bergamo Italy
2. Department of Electronics, Information and Bioengineering Politecnico di Milano Milan Italy
Abstract
AbstractSystem identification plays a key role in robust control, as not only it provides a nominal model for model‐based design, but also the estimate of the model uncertainty can be employed for guaranteeing robust stability and performance. In this paper, we investigate the use of kernel‐based identification methods in mixed‐sensitivity control, and we show that, using the uncertainty description returned by such methods, we can also automate the selection of the optimal weights, which represent the most critical knobs in real‐world applications. We finally compare our approach with a benchmark prediction‐error method on a numerical case study. Simulation results illustrate that kernel‐based identification might be more suited for robust control, due to its low‐bias modeling capability.
Subject
Electrical and Electronic Engineering,Industrial and Manufacturing Engineering,Mechanical Engineering,Aerospace Engineering,Biomedical Engineering,General Chemical Engineering,Control and Systems Engineering
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