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LLM-powered reasoning in agent-based modeling

Researchers introduced HALE, a hybrid agent-based and language-driven epidemic modeling framework that uses large language models to predict human decision-making in simulations, demonstrated by modeling COVID-19 in Salt Lake County, UT.

read1 min views1 publishedJul 9, 2026
LLM-powered reasoning in agent-based modeling
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[Submitted on 7 Jul 2026]


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Abstract:Agent-based modeling (ABM) has the capability to model millions of individuals and their interactions, which is useful for policy making. However, ABMs have traditionally relied on static prior, which prevents the models from adapting to real-time changes. Our research provides a novel approach to addressing this information gap. Large language models (LLMs) offer new opportunities to predict human decision-making. Here, we introduce a scalable Hybrid Agent-based and Language-driven Epidemic (HALE) modeling framework that leverages LLMs to predict human decision-making in an ABM simulation. As a proof-of-concept, we use HALE to simulate COVID-19 and its effects in Salt Lake County, UT.

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