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October 13, 20251 citationsOpen Access

Human-AI Collaboration: Trade-offs Between Performance and Preferences

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LMLukas William MayerSKSheer KarnyJAJackie Ayoub

Key Points

  • Agents that consider human actions are preferred over those focused solely on performance, enhancing collaboration.
  • A Bayesian model shows that varying collaborative strategies influence perceived traits and team performance metrics.
  • Participants evaluated human-centric agents more favorably, indicating that collaboration must involve subjective preferences and objectivity.
  • Evidence of inequality-aversion effects reveals people's desire for meaningful contributions in AI collaborations.

Abstract

Despite the growing interest in collaborative AI, designing systems that seamlessly integrate human input remains a major challenge. In this study, we developed a task to systematically examine human preferences for collaborative agents. We created and evaluated five collaborative AI agents with strategies that differ in the manner and degree they adapt to human actions. Participants interacted with a subset of these agents, evaluated their perceived traits, and selected their preferred agent. We used a Bayesian model to understand how agents' strategies influence the Human-AI team performance, AI's perceived traits, and the factors shaping human-preferences in pairwise agent comparisons. Our results show that agents who are more considerate of human actions are preferred over purely performance-maximizing agents. Moreover, we show that such human-centric design can improve the likability of AI collaborators without reducing performance. We find evidence for inequality-aversion effects being a driver of human choices, suggesting that people prefer collaborative agents which allow them to meaningfully contribute to the team. Taken together, these findings demonstrate how collaboration with AI can benefit from development efforts which include both subjective and objective metrics.

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Cite This Study

Mayer et al. (2025) studied this question.

synapsesocial.com/papers/68ecc715d1cc7436f7d1899ehttps://doi.org/10.48550/arxiv.2503.00248
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