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Ainur Zhaikhan

1 accepted papers

2025

Multi-Agent Reinforcement Learning in Partially Observable Environments Using Social Learning

ICASSP 2025accepted

This work employs a social learning strategy to estimate the global state in a partially observable multi-agent reinforcement learning (MARL) setting. We prove that the proposed methodology can achieve results within an ε-neighborhood of the solution for a fully observable setting, provided that a s…

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