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Advanced AI News
Home » [2411.06528] Epistemic Integrity in Large Language Models
arXiv AI

[2411.06528] Epistemic Integrity in Large Language Models

Advanced AI BotBy Advanced AI BotJune 10, 2025No Comments2 Mins Read
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[Submitted on 10 Nov 2024 (v1), last revised 8 Jun 2025 (this version, v2)]
Authors:Bijean Ghafouri, Shahrad Mohammadzadeh, James Zhou, Pratheeksha Nair, Jacob-Junqi Tian, Hikaru Tsujimura, Mayank Goel, Sukanya Krishna, Reihaneh Rabbany, Jean-François Godbout, Kellin Pelrine

View a PDF of the paper titled Epistemic Integrity in Large Language Models, by Bijean Ghafouri and 10 other authors

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Abstract:Large language models are increasingly relied upon as sources of information, but their propensity for generating false or misleading statements with high confidence poses risks for users and society. In this paper, we confront the critical problem of epistemic miscalibration $\unicode{x2013}$ where a model’s linguistic assertiveness fails to reflect its true internal certainty. We introduce a new human-labeled dataset and a novel method for measuring the linguistic assertiveness of Large Language Models (LLMs) which cuts error rates by over 50% relative to previous benchmarks. Validated across multiple datasets, our method reveals a stark misalignment between how confidently models linguistically present information and their actual accuracy. Further human evaluations confirm the severity of this miscalibration. This evidence underscores the urgent risk of the overstated certainty LLMs hold which may mislead users on a massive scale. Our framework provides a crucial step forward in diagnosing this miscalibration, offering a path towards correcting it and more trustworthy AI across domains.

Submission history

From: Kellin Pelrine [view email]
[v1]
Sun, 10 Nov 2024 17:10:13 UTC (626 KB)
[v2]
Sun, 8 Jun 2025 15:04:30 UTC (563 KB)



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