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  • title: Universally Expressive Communication in Multi-Agent Reinforcement Learning
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            Universally Expressive Communication in Multi-Agent Reinforcement Learning
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            Universally Expressive Communication in Multi-Agent Reinforcement Learning

            Nov 28, 2022

            Speakers

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            Matthew Morris

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            Thomas D. Barrett

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            AP

            Arnu Pretorius

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            About

            Allowing agents to share information through communication is crucial for solving complex tasks in multi-agent reinforcement learning. In this work, we consider the question of whether a given communication protocol can express an arbitrary policy. By observing that many existing protocols can be viewed as instances of graph neural networks (GNNs), we demonstrate the equivalence of joint action selection to node labelling. With standard GNN approaches provably limited in their expressive capacit…

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            NeurIPS 2022

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