Data Exchange Markets via Utility Balancing
Aditya Bhaskara, Sreenivas Gollapudi, Sungjin Im, Kostas Kollias, Kamesh Munagala, Govind S. Sankar
Abstract
This paper explores the design of a balanced data-sharing marketplace for entities with heterogeneous datasets and machine learning models that they seek to refine using data from other agents. The goal of the marketplace is to encourage participation for data sharing in the presence of such heterogeneity. Our market design approach for data sharing focuses on interim utility balance, where participants contribute and receive equitable utility from refinement of their models. We present such a market model for which we study computational complexity, solution existence, and approximation algorithms for welfare maximization and core stability. We finally support our theoretical insights with simulations on a mean estimation task inspired by road traffic delay estimation.
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Cited by top-tier papers4
- On the Existence and Complexity of Core-Stable Data ExchangesJiaxin Song, Pooja Kulkarni, Parnian Shahkar, Bhaskar Ray ChaudhuryNeurIPS 2025 · 8 citations
- Data Pricing via Competitive EquilibriumBhaskar Ray Chaudhury, Jugal Garg, Aniket Murhekar, Jiaxin SongWWW 2026 · 1 citation
- You Get What You Give: Reciprocally Fair Federated LearningAniket Murhekar, Jiaxin Song, Parnian Shahkar, Bhaskar Ray Chaudhury et al.ICML 2025
- Equilibrium Pricing in Oligopolistic Data MarketsBhaskar Ray Chaudhury, Jugal Garg, Eklavya Sharma, Jiaxin SongICML 2026
Builds on4
- Model-sharing Games: Analyzing Federated Learning Under Voluntary ParticipationKate Donahue, Jon M. KleinbergAAAI 2021 · 96 citations
- Optimality and Stability in Federated Learning: A Game-theoretic ApproachKate Donahue, Jon M. KleinbergNeurIPS 2021 · 74 citations
- Revenue Maximization for Query PricingShuchi Chawla, Shaleen Deep, Paraschos Koutris, Yifeng TengVLDB 2020 · 58 citations
- Data Market Platforms: Trading Data Assets to Solve Data ProblemsRaul Castro Fernandez, Pranav Subramaniam, Michael J. FranklinVLDB 2020
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