On the Completeness and Ordering of Path-Complete Barrier Functions

Fuente: arXiv
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Autori principali: Anand, Mahathi, Jungers, Raphaël, Zamani, Majid, Allgöwer, Frank
Natura: Preprint
Pubblicazione: 2025
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author Anand, Mahathi
Jungers, Raphaël
Zamani, Majid
Allgöwer, Frank
author_facet Anand, Mahathi
Jungers, Raphaël
Zamani, Majid
Allgöwer, Frank
contents This paper is concerned with path-complete barrier functions which offer a graph-based methodology for verifying safety properties in switched systems. The path-complete framework leverages algebraic (barrier functions) as well as combinatorial (graph) components to characterize a set of safety conditions for switched systems, thus offering high flexibility (two degrees of freedom) in searching for suitable safety certificates. In this paper, we do not propose any new safety criteria. Instead, we further investigate the role that the combinatorial component plays in the safety verification problem. First, we prove that path-completeness, which is a property on a graph that describes the switching sequences, is necessary to obtain a set of valid safety conditions. As a result, the path-complete framework is able to provide a complete characterization of safety conditions for switched systems. Furthermore, we provide a systematic methodology for comparing two path-complete graphs and the conservatism associated with the resulting safety conditions. Specifically, we prove that under some conditions, such as when there exists a simulation relation between two path-complete graphs, it is possible to conclude that one graph is always able to provide less conservative safety conditions than another, independent of the algebraic properties of the switched system and the template of the barrier function under consideration. Such a result paves the way for a systematic use of the path-complete framework with barrier functions, as one can then consistently choose the appropriate graph that provides less conservative safety conditions.
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id arxiv_https___arxiv_org_abs_2503_19561
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle On the Completeness and Ordering of Path-Complete Barrier Functions
Anand, Mahathi
Jungers, Raphaël
Zamani, Majid
Allgöwer, Frank
Systems and Control
Formal Languages and Automata Theory
This paper is concerned with path-complete barrier functions which offer a graph-based methodology for verifying safety properties in switched systems. The path-complete framework leverages algebraic (barrier functions) as well as combinatorial (graph) components to characterize a set of safety conditions for switched systems, thus offering high flexibility (two degrees of freedom) in searching for suitable safety certificates. In this paper, we do not propose any new safety criteria. Instead, we further investigate the role that the combinatorial component plays in the safety verification problem. First, we prove that path-completeness, which is a property on a graph that describes the switching sequences, is necessary to obtain a set of valid safety conditions. As a result, the path-complete framework is able to provide a complete characterization of safety conditions for switched systems. Furthermore, we provide a systematic methodology for comparing two path-complete graphs and the conservatism associated with the resulting safety conditions. Specifically, we prove that under some conditions, such as when there exists a simulation relation between two path-complete graphs, it is possible to conclude that one graph is always able to provide less conservative safety conditions than another, independent of the algebraic properties of the switched system and the template of the barrier function under consideration. Such a result paves the way for a systematic use of the path-complete framework with barrier functions, as one can then consistently choose the appropriate graph that provides less conservative safety conditions.
title On the Completeness and Ordering of Path-Complete Barrier Functions
topic Systems and Control
Formal Languages and Automata Theory
url https://arxiv.org/abs/2503.19561