AI Debate Aids Assessment of Controversial Claims
Salman Rahman, Sheriff Issaka, Ashima Suvarna, Genglin Liu, James Shiffer, Jaeyoung Lee, Md Rizwan Parvez, Hamid Palangi, Shi Feng, Nanyun Peng, Yejin Choi, Julian Michael, Liwei Jiang, Saadia Gabriel

TL;DR
This paper demonstrates that AI debate can improve human judgment accuracy on controversial claims and that AI judges with human-like personas outperform humans and non-persona AI, offering a scalable oversight method.
Contribution
It introduces AI debate as a novel approach to guide biased human evaluators toward truth and shows AI judges with personas outperform humans in accuracy.
Findings
Debate improves human judgment accuracy by 4-10%.
AI judges with personas achieve 78.5% accuracy, surpassing humans at 70.1%.
Debate helps skeptical judges move toward accurate views.
Abstract
As AI grows more powerful, it will increasingly shape how we understand the world. But with this influence comes the risk of amplifying misinformation and deepening social divides-especially on consequential topics where factual accuracy directly impacts well-being. Scalable Oversight aims to ensure AI systems remain truthful even when their capabilities exceed those of their evaluators. Yet when humans serve as evaluators, their own beliefs and biases can impair judgment. We study whether AI debate can guide biased judges toward the truth by having two AI systems debate opposing sides of controversial factuality claims on COVID-19 and climate change where people hold strong prior beliefs. We conduct two studies. Study I recruits human judges with either mainstream or skeptical beliefs who evaluate claims through two protocols: debate (interaction with two AI advisors arguing opposing…
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Taxonomy
TopicsEthics and Social Impacts of AI · Law, AI, and Intellectual Property
