Data-Based Control Design for Output-Error Linear Discrete-Time Systems With Probabilistic Stability Guarantees

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Abstract

In this letter we propose a novel method for direct data-based design of an output feedback controller for output-error processes in the single-input-single-output case. We consider a finite number of input/output data points collected from the system. Based on them, we define a set of state-space perturbed models consistent with data, where a bound on the disturbance is obtained by scenario optimization, and the structural properties of the models in this set are theoretically analyzed. This leads to a linear matrix inequality for the design of the feedback control law with probabilistic asymptotic stability guarantees. A simulated non-minimum phase system illustrates the approach.

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D’Amico, W., Bisoffi, A., & Farina, M. (2023). Data-Based Control Design for Output-Error Linear Discrete-Time Systems With Probabilistic Stability Guarantees. IEEE Control Systems Letters, 7, 2035–2040. https://doi.org/10.1109/LCSYS.2023.3284391

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