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arxiv: 2512.01938 · v1 · pith:JELERLCUnew · submitted 2025-12-01 · 📡 eess.SY · cs.SY· math.OC

Event-triggered control of nonlinear systems from data

classification 📡 eess.SY cs.SYmath.OC
keywords dataevent-triggeredsystemsdata-baseddesignserrorfunctionlyapunov
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In a recent paper [8], we introduced a data-based approach to design event-triggered controllers for linear systems directly from data. Here, we extend the results in [8] to a class of nonlinear systems. We provide two data-based designs certified by a (classical) Lyapunov function. For these two designs, we devise event-triggered policies that rely on the previously found Lyapunov function, have parameters tuned from data, ensure a positive minimum inter-event time, and act based either on the state error or on the library error. These two different policies, and their respective advantages, are illustrated numerically.

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