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FACTAPPEAL: Identifying Epistemic Factual Appeals in News Media

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

How is a factual claim made credible? We propose the novel task of Epistemic Appeal Identification, which identifies whether and how factual statements have been anchored by external sources or evidence. To advance research on this task, we present FACTAPPEAL, a manually annotated dataset of 3,226 English-language news sentences. Unlike prior resources that focus solely on claim detection and verification, FACTAPPEAL identifies the nuanced epistemic structures and evidentiary basis underlying these claims and used to support them. FACTAPPEAL contains span-level annotations which identify factual statements and mentions of sources on which they rely. Moreover, the annotations include fine-grained characteristics of factual appeals such as the type of source (e.g. Active Participant, Witness, Expert, Direct Evidence), whether it is mentioned by name, mentions of the source’s role and epistemic credentials, attribution to the source via direct or indirect quotation, and other features. We model the task with a range of encoder models and generative decoder models in the 2B–9B parameter range. Our best performing model, based on Gemma 2 9B, achieves a macro-F1 score of 0.73.

Original languageEnglish
Title of host publication19th Conference of the European Chapter of the Association for Computational Linguistics, Findings of EACL 2026
PublisherAssociation for Computational Linguistics (ACL)
Pages6545-6556
Number of pages12
ISBN (Electronic)9798891763869
DOIs
StatePublished - 2026
Event19th Conference of the European Chapter of the Association for Computational Linguistics, Findings of EACL 2026 - Rabat, Morocco
Duration: 24 Mar 202629 Mar 2026

Publication series

Name19th Conference of the European Chapter of the Association for Computational Linguistics, Findings of EACL 2026

Conference

Conference19th Conference of the European Chapter of the Association for Computational Linguistics, Findings of EACL 2026
Country/TerritoryMorocco
CityRabat
Period24/03/2629/03/26

Bibliographical note

Publisher Copyright:
©2026 Association for Computational Linguistics.

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