Optimally Solving Two-Agent Decentralized POMDPs Under One-Sided Information Sharing
Yuxuan Xie, Jilles Dibangoye, Olivier Buffet
Abstract
Optimally solving decentralized partially observable Markov decision processes (Dec-POMDPs) under either full or no information sharing received significant attention in recent years. However, little is known about how partial information sharing affects existing theory and algorithms. This paper addresses this question for a team of two agents, with one-sided information sharing, i.e. both agents have imperfect information about the state of the world, but only one has access to what the other sees and does. From the perspective of a central planner, we show that the original problem can be reformulated into an equivalent information-state Markov decision process and solved as such. Besides, we prove that the optimal value function exhibits a specific form of uniform continuity. We also present heuristic search algorithms utilizing this property and providing the first results for this family of problems.
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Install the CLIlune papers fulltext 4666738b-88bd-48a2-b161-7fdc62e9e8f1Cited by top-tier papers3
- Solving Common-Payoff Games with Approximate Policy IterationSamuel Sokota, Edward Lockhart, Finbarr Timbers, Elnaz Davoodi et al.AAAI 2021 · 22 citations
- Solving Hierarchical Information-Sharing Dec-POMDPs: An Extensive-Form Game ApproachJohan Peralez, Aurélien Delage, Olivier Buffet, Jilles Steeve DibangoyeICML 2024 · 5 citations
- Optimally Solving Simultaneous-Move Dec-POMDPs: The Sequential Central Planning ApproachJohan Peralez, Aurélien Delage, Jacopo Castellini, Rafael F. Cunha et al.AAAI 2025 · 3 citations
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