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Collusive Outcomes Without Collusion

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arxiv 2403.07177 v1 pith:CNAHKHAB submitted 2024-03-11 econ.TH

classification econ.TH
keywords collusiveoutcomesfirmsmarketmodelrecurrentalgorithmiccollusion
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We develop a model of algorithmic pricing that shuts down every channel for explicit or implicit collusion while still generating collusive outcomes. We analyze the dynamics of a duopoly market where both firms use pricing algorithms consisting of a parameterized family of model specifications. The firms update both the parameters and the weights on models to adapt endogenously to market outcomes. We show that the market experiences recurrent episodes where both firms set prices at collusive levels. We analytically characterize the dynamics of the model, using large deviation theory to explain the recurrent episodes of collusive outcomes. Our results show that collusive outcomes may be a recurrent feature of algorithmic environments with complementarities and endogenous adaptation, providing a challenge for competition policy.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Algorithmic collusion under asynchronous price updating

    econ.TH 2026-08 conditional novelty 7.0 of 10

    Asynchrony in price updates hampers algorithmic collusion in simulated duopolies, except when algorithms monitor their competitor's current price.

  2. An Economy of AI Agents

    econ.GN 2025-09 accept novelty 2.0 of 10

    A survey chapter that maps open economic questions about AI agents in markets, organizations, and institutions, arguing that current theories may need extension.

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