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Related Experiment Video

Updated: Jul 1, 2025

Augmenting Large Language Models via Vector Embeddings to Improve Domain-Specific Responsiveness
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Published on: December 6, 2024

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Retrieval augmented scientific claim verification.

Hao Liu1, Ali Soroush2, Jordan G Nestor2

  • 1School of Computing, Montclair State University, Montclair, NJ 07043, United States.

JAMIA Open
|March 8, 2024
PubMed
Summary
This summary is machine-generated.

This study introduces CliVER, an automated system for scientific claim verification using PubMed abstracts. CliVER effectively retrieves and analyzes clinical trial data, demonstrating potential for efficient and accurate scientific claim assessment.

Keywords:
clinical trialdeep learningevidence appraisalevidence retrievalnatural language processing

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Area of Science:

  • Biomedical Informatics
  • Artificial Intelligence in Healthcare
  • Clinical Trial Data Analysis

Background:

  • Automating the verification of scientific claims is crucial for evidence-based medicine.
  • Existing methods often lack efficiency in processing large volumes of biomedical literature.
  • The PICO framework provides a structured approach for evaluating clinical evidence.

Purpose of the Study:

  • To develop and evaluate an automated system, CliVER, for scientific claim verification using PubMed abstracts.
  • To leverage retrieval-augmented techniques for efficient information extraction and claim assessment.
  • To create a specialized dataset (CoVERt) for training and validating the system.

Main Methods:

  • Developed CliVER, a system integrating retrieval-augmented techniques, sentence extraction, and PICO framework analysis.
  • Employed an ensemble of deep learning models for classifying claim support, refutation, or neutrality.
  • Constructed the CoVERt dataset with 15 COVID-19 drug claims and 96 labeled clinical trial abstracts.
  • Evaluated CliVER on CoVERt and the SciFact dataset for label prediction accuracy.

Main Results:

  • CliVER achieved an F1 score of 0.92 on the CoVERt dataset for label prediction.
  • The ensemble model surpassed individual state-of-the-art models by 3-11% in F1 score.
  • Compared to clinicians, CliVER showed 79.0% precision in abstract retrieval, 67.4% in sentence selection, and 63.2% in label prediction.

Conclusions:

  • CliVER shows promise in automating scientific claim verification by utilizing PubMed abstracts and retrieval-augmented strategies.
  • The system's performance suggests a viable approach for harnessing clinical trial data for claim assessment.
  • Further research is needed to explore CliVER's full clinical utility.