Robust Adaptive Discrete-Time Control Barrier Certificate

Fuente: arXiv
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Autores principales: Liu, Changrui, Alan, Anil, Shi, Shengling, De Schutter, Bart
Formato: Preprint
Publicado: 2025
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author Liu, Changrui
Alan, Anil
Shi, Shengling
De Schutter, Bart
author_facet Liu, Changrui
Alan, Anil
Shi, Shengling
De Schutter, Bart
contents This work develops a robust adaptive control strategy for discrete-time systems using Control Barrier Functions (CBFs) to ensure safety under parametric model uncertainty and disturbances. A key contribution of this work is establishing a barrier function certificate in discrete time for general online parameter estimation algorithms. This barrier function certificate guarantees positive invariance of the safe set despite disturbances and parametric uncertainty without access to the true system parameters. In addition, real-time implementation and inherent robustness guarantees are provided. The proposed robust adaptive safe control framework demonstrates that the parameter estimation module can be designed separately from the CBF-based safety filter, simplifying the development of safe adaptive controllers for discrete-time systems. The resulting safe control approach guarantees that the system remains within the safe set while adapting to model uncertainties, making it a promising strategy for discrete-time safety-critical systems.
format Preprint
id arxiv_https___arxiv_org_abs_2508_08153
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Robust Adaptive Discrete-Time Control Barrier Certificate
Liu, Changrui
Alan, Anil
Shi, Shengling
De Schutter, Bart
Systems and Control
Optimization and Control
This work develops a robust adaptive control strategy for discrete-time systems using Control Barrier Functions (CBFs) to ensure safety under parametric model uncertainty and disturbances. A key contribution of this work is establishing a barrier function certificate in discrete time for general online parameter estimation algorithms. This barrier function certificate guarantees positive invariance of the safe set despite disturbances and parametric uncertainty without access to the true system parameters. In addition, real-time implementation and inherent robustness guarantees are provided. The proposed robust adaptive safe control framework demonstrates that the parameter estimation module can be designed separately from the CBF-based safety filter, simplifying the development of safe adaptive controllers for discrete-time systems. The resulting safe control approach guarantees that the system remains within the safe set while adapting to model uncertainties, making it a promising strategy for discrete-time safety-critical systems.
title Robust Adaptive Discrete-Time Control Barrier Certificate
topic Systems and Control
Optimization and Control
url https://arxiv.org/abs/2508.08153