Shields to Guarantee Probabilistic Safety in MDPs
Linus Heck, Filip Macák, Roman Andriushchenko, Milan Ceska, Sebastian Junges
摘要
Abstract Shielding is a prominent model-based technique to ensure safety of autonomous agents. Classical shielding aims to ensure that nothing bad ever happens and comes with strong guarantees about safety and maximal permissiveness. However, shielding systems for probabilistic safety, where something bad is allowed to happen with an acceptable probability, has proven to be more intricate. This paper presents a formal framework that conservatively extends classical shields to probabilistic safety. In this framework, we (i) demonstrate the impossibility of preserving the strong guarantees on safety and permissiveness, (ii) provide natural shields with weaker guarantees, and (iii) introduce offline and online shield constructions ensuring strong safety guarantees. The empirical evaluation highlights the practical advantages of the new shields, as well as their computational feasibility.
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它引用的顶会 Paper4
- Shield Synthesis for LTL Modulo TheoriesAndoni Rodríguez, Guy Amir, Davide Corsi, César Sánchez 等AAAI 2025 · 被引用 13 次
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- Reinforcement Learning of Risk-Constrained Policies in Markov Decision ProcessesTomás Brázdil, Krishnendu Chatterjee, Petr Novotný, Jiri VahalaAAAI 2020 · 被引用 5 次
- Adaptive Shielding via Parametric Safety ProofsYao Feng, Jun Zhu, André Platzer, Jonathan LaurentOOPSLA 2025 · 被引用 4 次
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