Clinical risk prediction using language models: benefits and considerations

Published: 01 Jan 2024, Last Modified: 18 Feb 2025J. Am. Medical Informatics Assoc. 2024EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: The use of electronic health records (EHRs) for clinical risk prediction is on the rise. However, in many practical settings, the limited availability of task-specific EHR data can restrict the application of standard machine learning pipelines. In this study, we investigate the potential of leveraging language models (LMs) as a means to incorporate supplementary domain knowledge for improving the performance of various EHR-based risk prediction tasks.
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