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Protocol for evaluating ChatGPT in biomedical association generation and verification using a RAG-enabled,
Ahmed Abdeen Hamed1, Luis M Rocha2
1Department of Biochemistry, University of Nebraska-Lincoln, Lincoln, NE 68588, USA; School of Systems Science & Industrial Engineering, Binghamton University, Binghamton, NY 13902, USA.
Abstract:
We present a protocol to evaluate ChatGPT's ability to generate disease-centric biomedical associations. It outlines how we generate the associations, validate the biological entities using biomedical ontologies, and verify associations using literature. The protocol includes a self-consistency strategy to assess generative reliability across ChatGPT models. To address ontology exact-match limitations, we provide a use case performing semantic verification through a workflow enabled by Retrieval-Augmented Generation (RAG) powered by open-source large language models (LLMs). This enables LLMs to establish truth over content generated by other LLMs and expose hallucination.
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