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October 17, 20253 citationsOpen Access

Social Misattributions in Conversations with Large Language Models

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AFAndrea FerrarioATAlberto TermineAFAlessandro Facchini

Key Points

  • Social misattributions arise when users attribute identities to large language models that do not reflect their true capabilities.
  • These misattributions can lead to risks such as emotional manipulation and unwarranted trust among human users.
  • The study draws on socio-linguistics and philosophy of technology to examine these interactions in depth.
  • Recommendations include fostering social transparency and applying frictional design principles in AI systems.

Abstract

We investigate a typology of socially and ethically risky phenomena emerging from the interaction between humans and large language model (LLM)-based conversational systems. As they relate to the way in which humans attribute social identity components, such as social roles, to LLM-based conversational systems, we term these phenomena `social misattributions.' Drawing on foundational works in interactional socio-linguistics, interpersonal pragmatics, and recent debates in the philosophy of technology, we argue that these social misattributions represent higher-order forms of anthropomorphisation of LLM-based conversational systems that are not justified by their technical capabilities and follow from the social context of conversational interactions. We discuss the risks these misattributions pose to human users, including emotional manipulation and unwarranted trust, and propose mitigation strategies. Our recommendations emphasise the importance of fostering social transparency and exploring approaches, such as frictional design, that are currently promoted in the research domain of human-centred artificial intelligence.

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Cite This Study

Ferrario et al. (2025) studied this question.

synapsesocial.com/papers/68f19f1ade32064e504ddac5https://doi.org/10.1609/aies.v8i1.36600
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