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Market-based Architectures in RL and Beyond

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arxiv 2503.05828 v1 pith:EDZH6Z6E submitted 2025-03-05 cs.AI econ.TH

Market-based Architectures in RL and Beyond

classification cs.AI econ.TH
keywords market-basedalgorithmsagentsmarketactionsaddressalgorithmallows
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Market-based agents refer to reinforcement learning agents which determine their actions based on an internal market of sub-agents. We introduce a new type of market-based algorithm where the state itself is factored into several axes called ``goods'', which allows for greater specialization and parallelism than existing market-based RL algorithms. Furthermore, we argue that market-based algorithms have the potential to address many current challenges in AI, such as search, dynamic scaling and complete feedback, and demonstrate that they may be seen to generalize neural networks; finally, we list some novel ways that market algorithms may be applied in conjunction with Large Language Models for immediate practical applicability.

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Cited by 1 Pith paper

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    cs.CL 2026-06 unverdicted novelty 6.0

    An economy of agents using auctions and wealth accumulation produces emergent multi-step reasoning that outperforms monolithic baselines on five agentic tasks.