LGAICLAug 27, 2023

Large Language Models Streamline Automated Machine Learning for Clinical Studies

arXiv:2308.14120v5109 citationsh-index: 59
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This work addresses the problem of underutilizing ML in clinical studies for practitioners, though it is incremental as it applies an existing method to a new domain.

The study tackled the knowledge gap between ML developers and clinicians by using ChatGPT ADA to autonomously develop ML models for clinical data analysis, finding that these models often outperformed manually crafted counterparts with no significant differences in performance metrics (P>0.071).

A knowledge gap persists between machine learning (ML) developers (e.g., data scientists) and practitioners (e.g., clinicians), hampering the full utilization of ML for clinical data analysis. We investigated the potential of the ChatGPT Advanced Data Analysis (ADA), an extension of GPT-4, to bridge this gap and perform ML analyses efficiently. Real-world clinical datasets and study details from large trials across various medical specialties were presented to ChatGPT ADA without specific guidance. ChatGPT ADA autonomously developed state-of-the-art ML models based on the original study's training data to predict clinical outcomes such as cancer development, cancer progression, disease complications, or biomarkers such as pathogenic gene sequences. Following the re-implementation and optimization of the published models, the head-to-head comparison of the ChatGPT ADA-crafted ML models and their respective manually crafted counterparts revealed no significant differences in traditional performance metrics (P>0.071). Strikingly, the ChatGPT ADA-crafted ML models often outperformed their counterparts. In conclusion, ChatGPT ADA offers a promising avenue to democratize ML in medicine by simplifying complex data analyses, yet should enhance, not replace, specialized training and resources, to promote broader applications in medical research and practice.

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