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February 14, 2026AI & Society1 citationsOpen Access

Resource allocation by algorithms: people prefer almost any alternative

HMHaiden MichaelUniversity of HohenheimUMUhl MatthiasUniversity of Hohenheim

Key Points

  • The research aims to explore how people perceive AI algorithms for allocating resources compared to other methods.
  • Conducted a vignette experiment presenting five scenarios for resource allocation.
  • Assessed moral desirability of AI allocations against alternatives like friends and lotteries.
  • Analyzed differences in attitudes toward essential and nonessential goods.
  • Participants found AI allocations morally less desirable than most alternatives.
  • Resistance to AI was stronger for nonessential goods.
  • Perceived opacity of AI systems contributed to moral rejection of algorithmic allocations.

Abstract

Abstract We examine people’s attitudes toward AI-based algorithms as a means to allocate scarce resources. Through a vignette experiment, we confront respondents with five scenarios in which an AI-based algorithm allocates various goods and ask them if they find this morally desirable. We compare people’s moral attitudes toward AI with their attitudes toward a friend, a waiting list, a lottery, and the market. Our results show that people rank allocations through AI as morally clearly less desirable than most alternatives. This is especially true for goods that are nonessential to a person’s survival. One potential explanation for the identified algorithm aversion is that AI is considered more opaque than its alternatives, and that an allocation mechanism’s moral rejection increases if its working is less well understood. Together, our results suggest that using AI to allocate resources, especially nonessential ones, is likely to meet substantial social resistances. To understand the reasons, researchers should systematically study laypeople’s moral intuitions about algorithms, a field we call folk algorithmics.

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Cite This Study

Michael et al. (2026) studied this question.

synapsesocial.com/papers/699011602ccff479cfe58034https://doi.org/10.1007/s00146-026-02886-1
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