RESEARCHarXiv CS.AI·5/11/2026
Hidden Coalitions in Multi-Agent AI: A Spectral Diagnostic from Internal Representations
This paper introduces a novel method to detect hidden coalition structures within multi-agent AI systems by analyzing their internal neural representations. It constructs a pairwise mutual-information graph from hidden states and applies spectral partitioning to identify coalition boundaries, validated in reinforcement learning environments.
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