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LLMs Are Not (Consistently) Bayesian: Quantifying Internal (In)consistencies of LLMs’ Probabilistic Beliefs

Applearxiv.org/pdf/2605.06915

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Updated 2 h ago · first seen 11 Sept 2026

paper_01M294AHM2Z9JAPGE6SY4ZN50T

Published
28 Aug 2026
T1 · 2 h ago
arXiv
2605.06915
T1 · 2 h ago

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Claim history for Authors
ValueValid from → toStatusSourceConfidenceExtractor
Chacha Chen, Matthew Jörke, Adam Goliński, Masha Fedzechkina, Guillermo Sapiro, Sinead Williamson, Nicholas FoticurrentcurrentApple Machine Learning ResearchT1highdeterministic

Claims are temporal and append-only: a new observation closes the previous claim (valid_to) instead of overwriting it. Conflicting claims from different sources are kept side by side and flagged — never averaged. Methodology →