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Related Concept Videos

Radiological Investigation III: Pulmonary Angiogram and PET Scan01:13

Radiological Investigation III: Pulmonary Angiogram and PET Scan

Radiological investigations are paramount in the diagnosis and management of various pulmonary diseases. Two essential investigations are the Pulmonary Angiogram and the Positron Emission Tomography (PET) Scan.
Pulmonary Angiogram
A Pulmonary Angiogram is an invasive procedure involving injecting a contrast medium through a catheter threaded into the pulmonary artery or the right side of the heart to visualize the pulmonary vasculature. Computed Tomography (CT) scans have mainly replaced this...

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Whole-body PET/MRI of Pediatric Patients: The Details That Matter
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Empowering PET imaging reporting with retrieval-augmented large language models and reading reports database: a pilot

Hongyoon Choi1,2,3, Dongjoo Lee4, Yeon-Koo Kang5

  • 1Department of Nuclear Medicine, Seoul National University Hospital, 101 Daehak-ro, Jongno-gu, Seoul, 03080, Republic of Korea. chy1000@snu.ac.kr.

European Journal of Nuclear Medicine and Molecular Imaging
|January 22, 2025
PubMed
Summary

Retrieval-augmented generation (RAG) Large Language Models (LLMs) improve medical imaging reporting by referencing prior PET reports and aiding diagnoses. This AI tool enhances nuclear medicine practice by finding similar cases and suggesting potential diagnoses.

Keywords:
Artificial intelligenceLarge language modelPET reportsRetrieval-augmented generation

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Area of Science:

  • Artificial Intelligence in Medicine
  • Natural Language Processing in Healthcare
  • Medical Imaging Analysis

Background:

  • Large Language Models (LLMs) show potential for natural language tasks in clinical settings, including medical imaging reporting.
  • Integrating LLMs with clinical data can enhance diagnostic accuracy and reporting efficiency.

Purpose of the Study:

  • To evaluate a retrieval-augmented generation (RAG) LLM system for improving medical imaging reporting.
  • To assess the efficacy of an LLM integrated with a PET report database for referencing prior cases and supporting decision-making.

Main Methods:

  • A custom LLM framework with retrieval capabilities was developed using a decade-long database of PET imaging reports.
  • Vector space embedding facilitated similarity-based retrieval for generating context-based answers and identifying similar cases or differential diagnoses.
  • Experienced nuclear medicine physicians evaluated the system's performance on relevance and appropriateness scores.

Main Results:

  • The RAG LLM system accurately clustered PET reports by diagnosis and study type within an embedded vector space.
  • The system demonstrated potential in referencing similar past cases and identifying exemplary ones.
  • 84.1% of retrieved cases were deemed relevant similar cases, and the RAG system significantly improved the appropriateness of suggested potential diagnoses compared to a non-RAG LLM.

Conclusions:

  • Integrating RAG LLM with a PET report database can support nuclear medicine imaging reading by identifying similar cases and deriving potential diagnoses.
  • Advanced AI tools, such as RAG LLM, have the potential to transform medical imaging reporting practices.