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May 8, 2026American Journal of Roentgenology3 citations

Leveraging Fine-Tuned Large Language Models for Interpretable Pancreatic Cystic Lesion Feature Extraction and Risk Categorization

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EREbrahim RasromaniNew York UniversitySKStella K. KangColumbia University Irving Medical CenterYXYanqi XuShanghai University of Engineering Science

Key Points

  • This research aims to utilize large language models to enhance feature extraction and risk categorization for pancreatic cystic lesions (PCLs).
  • Developed fine-tuned large language models for parsing radiology reports.
  • Created structured registries from extracted data to facilitate population-level research.
  • Evaluated the models' performance in identifying and categorizing features of PCLs.
  • Demonstrated improved accuracy in feature extraction from radiology reports using language models.
  • Identified significant risk factors associated with PCLs, enhancing risk categorization capabilities.

Abstract

LLMs have the potential to enable creation of large structured registries from existing radiology reports to support population-level research on PCLs.

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Cite This Study

Rasromani et al. (2026) studied this question.

synapsesocial.com/papers/69fd7e23bfa21ec5bbf065aehttps://doi.org/10.2214/ajr.25.34076
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