Deductive Controller Synthesis for Probabilistic Hyperproperties

July 10, 2023 ยท The Ethereal ยท ๐Ÿ› International Conference on Quantitative Evaluation of Systems

๐Ÿ”ฎ THE ETHEREAL: The Ethereal
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Authors Roman Andriushchenko, Ezio Bartocci, Milan Ceska, Francesco Pontiggia, Sarah Sallinger arXiv ID 2307.04503 Category cs.LO: Logic in CS Cross-listed cs.AI, cs.RO Citations 2 Venue International Conference on Quantitative Evaluation of Systems Last Checked 5 months ago
Abstract
Probabilistic hyperproperties specify quantitative relations between the probabilities of reaching different target sets of states from different initial sets of states. This class of behavioral properties is suitable for capturing important security, privacy, and system-level requirements. We propose a new approach to solve the controller synthesis problem for Markov decision processes (MDPs) and probabilistic hyperproperties. Our specification language builds on top of the logic HyperPCTL and enhances it with structural constraints over the synthesized controllers. Our approach starts from a family of controllers represented symbolically and defined over the same copy of an MDP. We then introduce an abstraction refinement strategy that can relate multiple computation trees and that we employ to prune the search space deductively. The experimental evaluation demonstrates that the proposed approach considerably outperforms HyperProb, a state-of-the-art SMT-based model checking tool for HyperPCTL. Moreover, our approach is the first one that is able to effectively combine probabilistic hyperproperties with additional intra-controller constraints (e.g. partial observability) as well as inter-controller constraints (e.g. agreements on a common action).
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