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arXiv · 2609.34459

Escaping Local Views: Discovering Latent Concepts for Interpretable Multi-Agent Reinforcement Learning

Abstract

Efficient cooperation is challenging due to the usual partial observability of each agent in multi-agent reinforcement learning. Recurrent networks encode local interaction histories, but their hidden representations provide limited insight into the information underlying individual decisions. To address these challenges, we propose a novel interpretable framework, called escaping local views (ELV), which introduces semantically structured latent concepts to render policy decisions transparent. Specifically, each agent extracts low-dimensional semantic concepts from its local observation and action-observation trajectory. These concepts are jointly encoded into a contextual latent variable via a variational autoencoder (VAE), which builds a bridge between local views and global semantics. To explicitly model the decision of each agent, we employ a dual-path attention mechanism in which one module estimates the salience of individual concepts relative to the global context, while the other captures higher-order cooperative patterns with pairwise concept interactions. Furthermore, we incorporate a concept prediction module that derives an intrinsic reward from next-concept prediction errors, which incentivizes agents to explore regions of semantic novelty. Experiments in multiple environments verify that ELV not only achieves competitive performance but also explicitly provides how agents reason about their decisions.

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BibTeXRIS

Yijie Sun, Sanquan Sun, Yanda Zhu, Yuanyang Zhu, Yaohua Hu, Chunlin Chen. 2026-09-28. Escaping Local Views: Discovering Latent Concepts for Interpretable Multi-Agent Reinforcement Learning. https://arxiv.org/abs/2609.34459

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