Mitigating the Velocity–Capacity Constraint Using Generative AI and LLM Architectures: Evidence from Wartime Fact-Checking

dc.contributor.authorProkopenko S.
dc.contributor.authorSundqvist D.
dc.contributor.authorBerbyuk Lindström N.
dc.contributor.authorHorbal Y.
dc.description.abstractThis paper examines how generative AI LLM architectures can mitigate the gap between information velocity and verification capacity in crisis-driven information environments. Drawing on the case of a newsroom-deployed fact-checking system developed in wartime Ukraine, we show how verification evolved from manual workflows to a hybrid architecture combining claim classification, evidence retrieval, synthesis, and human oversight. We conceptualize this as a response to a structural velocitycapacity constraint, where information spreads faster than it can be responsibly verified. The case shows that LLM-supported systems can increase verification throughput, while also introducing new risks related to hallucinations, bias, and epistemic opacity.
dc.identifier.citationProkopenko S. Mitigating the Velocity–Capacity Constraint Using Generative AI and LLM Architectures: Evidence from Wartime Fact-Checking / S. Prokopenko, D. Sundqvist, N. Berbyuk Lindström et al. // Thirty-Fourth European Conference on Information Systems (ECIS 2026), Milan, Italy. – 2026.
dc.identifier.urihttps://repository.hneu.edu.ua/handle/123456789/41647
dc.language.isoen_US
dc.subjectLarge Language Models (LLMs)
dc.subjectDisinformation
dc.subjectCrisis
dc.subjectInformation Velocity
dc.subjectVerification Capacity
dc.titleMitigating the Velocity–Capacity Constraint Using Generative AI and LLM Architectures: Evidence from Wartime Fact-Checking
dc.typeThesis

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