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October 16, 20257 citationsOpen Access

Large Language Models Are More Persuasive Than Incentivized Human Persuaders

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PSPhilipp SchoeneggerFSFabrizio SalviJLJiacheng Liu

Key Points

  • LLM persuaders achieved significantly higher compliance than human persuaders, demonstrating their superior persuasion capabilities.
  • In an interactive quiz setting, LLMs increased quiz takers' accuracy when steering them toward correct answers.
  • The study involved a preregistered large-scale experiment comparing LLMs and humans in persuasive roles.
  • AI's persuasive abilities highlight the need for developing alignment and governance frameworks for its use.

Abstract

We directly compare the persuasion capabilities of a frontier large language model (LLM; Claude Sonnet 3.5) against incentivized human persuaders in an interactive, real-time conversational quiz setting. In this preregistered, large-scale incentivized experiment, participants (quiz takers) completed an online quiz where persuaders (either humans or LLMs) attempted to persuade quiz takers toward correct or incorrect answers. We find that LLM persuaders achieved significantly higher compliance with their directional persuasion attempts than incentivized human persuaders, demonstrating superior persuasive capabilities in both truthful (toward correct answers) and deceptive (toward incorrect answers) contexts. We also find that LLM persuaders significantly increased quiz takers' accuracy, leading to higher earnings, when steering quiz takers toward correct answers, and significantly decreased their accuracy, leading to lower earnings, when steering them toward incorrect answers. Overall, our findings suggest that AI's persuasion capabilities already exceed those of humans that have real-money bonuses tied to performance. Our findings of increasingly capable AI persuaders thus underscore the urgency of emerging alignment and governance frameworks.

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Cite This Study

Schoenegger et al. (2025) studied this question.

synapsesocial.com/papers/68f147cc724575985c3fd11ahttps://doi.org/10.48550/arxiv.2505.09662
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