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Deep Learning for Two-Sided Matching

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arxiv 2107.03427 v2 pith:MAB4C66B submitted 2021-07-07 cs.GT cs.AIcs.LG

classification cs.GTcs.AIcs.LG
keywords learningmatchingmechanismsstablestrategy-proofdeepdesigndifferentiable
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We initiate the study of deep learning for the automated design of two-sided matching mechanisms. What is of most interest is to use machine learning to understand the possibility of new tradeoffs between strategy-proofness and stability. These properties cannot be achieved simultaneously, but the efficient frontier is not understood. We introduce novel differentiable surrogates for quantifying ordinal strategy-proofness and stability and use them to train differentiable matching mechanisms that map discrete preferences to valid randomized matchings. We demonstrate that the efficient frontier characterized by these learned mechanisms is substantially better than that achievable through a convex combination of baselines of deferred acceptance (stable and strategy-proof for only one side of the market), top trading cycles (strategy-proof for one side, but not stable), and randomized serial dictatorship (strategy-proof for both sides, but not stable). This gives a new target for economic theory and opens up new possibilities for machine learning pipelines in matching market design.

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  1. Learning Truthful Mechanisms without Discretization

    cs.GT 2025-06 conditional novelty 5.0 of 10

    TEDI learns truthful, revenue-maximizing mechanisms by representing prices as continuous partially convex functions and training them with a covariance gradient trick and Langevin sampling, without discretizing outcomes.

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