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Updated: Jun 9, 2025

Augmenting Large Language Models via Vector Embeddings to Improve Domain-Specific Responsiveness
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Large language models and synthetic health data: progress and prospects.

Daniel Smolyak1, Margrét V Bjarnadóttir2, Kenyon Crowley3

  • 1Department of Computer Science, University of Maryland, College Park, College Park, MD 20742, United States.

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|October 28, 2024
PubMed
Summary

Large language models (LLMs) offer new opportunities and risks for generating high-quality synthetic health data. Further research is needed to explore LLMs' potential and challenges in synthetic health data generation (SHDG).

Keywords:
generative artificial intelligencehealth equitylarge language modelsresponsible AIsynthetic data

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Area of Science:

  • Health Informatics
  • Artificial Intelligence
  • Machine Learning

Background:

  • High-quality synthetic health data are crucial for advanced analytics due to challenges in acquiring real health data.
  • Growing demand for clinical discovery, prediction, and operational excellence necessitates reliable synthetic data solutions.

Purpose of the Study:

  • To explore the potential and risks of large language models (LLMs) in synthetic health data generation (SHDG).
  • To summarize the current landscape of SHDG methods and identify how LLMs can address existing challenges.

Main Methods:

  • Systematic scoping reviews of SHDG domain.
  • Analysis of recent LLM methodologies applied to SHDG.
  • Investigation of LLM capabilities and limitations.

Main Results:

  • Current generative models like Generative Adversarial Networks (GANs) face limitations in SHDG.
  • LLMs present promising approaches to mitigate existing challenges in SHDG.
  • Six key research directions for LLMs in SHDG were identified: evaluation, adoption, efficiency, generalization, equity, and regulation.

Conclusions:

  • LLMs show significant potential but also pose risks within the health domain.
  • Further investigation into the advantages and disadvantages of LLMs for SHDG is essential.