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A Mathematical Framework for AI-Human Integration in Work

Author

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  • L. Elisa Celis
  • Lingxiao Huang
  • Nisheeth K. Vishnoi

Abstract

The rapid rise of Generative AI (GenAI) tools has sparked debate over their role in complementing or replacing human workers across job contexts. We present a mathematical framework that models jobs, workers, and worker-job fit, introducing a novel decomposition of skills into decision-level and action-level subskills to reflect the complementary strengths of humans and GenAI. We analyze how changes in subskill abilities affect job success, identifying conditions for sharp transitions in success probability. We also establish sufficient conditions under which combining workers with complementary subskills significantly outperforms relying on a single worker. This explains phenomena such as productivity compression, where GenAI assistance yields larger gains for lower-skilled workers. We demonstrate the framework' s practicality using data from O*NET and Big-Bench Lite, aligning real-world data with our model via subskill-division methods. Our results highlight when and how GenAI complements human skills, rather than replacing them.

Suggested Citation

  • L. Elisa Celis & Lingxiao Huang & Nisheeth K. Vishnoi, 2025. "A Mathematical Framework for AI-Human Integration in Work," Papers 2505.23432, arXiv.org, revised May 2025.
  • Handle: RePEc:arx:papers:2505.23432
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    References listed on IDEAS

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    5. Tyna Eloundou & Sam Manning & Pamela Mishkin & Daniel Rock, 2023. "GPTs are GPTs: An Early Look at the Labor Market Impact Potential of Large Language Models," Papers 2303.10130, arXiv.org, revised Aug 2023.
    6. Michelle Vaccaro & Abdullah Almaatouq & Thomas Malone, 2024. "When combinations of humans and AI are useful: A systematic review and meta-analysis," Nature Human Behaviour, Nature, vol. 8(12), pages 2293-2303, December.
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