Leveraging Medical Literature for Section Prediction in Electronic Health Records

被引:0
|
作者
Rosenthal, Sara [1 ]
Barker, Ken [1 ]
Liang, Jason Zhicheng [1 ,2 ]
机构
[1] IBM Res, Yorktown Hts, NY 10598 USA
[2] Rensselaer Polytech Inst, Troy, NY USA
关键词
HEART-DISEASE; RISK-FACTORS;
D O I
暂无
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Electronic Health Records (EHRs) contain both structured content and unstructured (text) content about a patient's medical history. In the unstructured text parts, there are common sections such as Assessment and Plan, Social History, and Medications. These sections help physicians find information easily and can be used by an information retrieval system to return specific information sought by a user. However, it is common that the exact format of sections in a particular EHR does not adhere to known patterns. Therefore, being able to predict sections and headers in EHRs automatically is beneficial to physicians. Prior approaches in EHR section prediction have only used text data from EHRs and have required significant manual annotation. We propose using sections from medical literature (e.g., textbooks, journals, web content) that contain content similar to that found in EHR sections. Our approach uses data from a different kind of source where labels are provided without the need of a time-consuming annotation effort. We use this data to train two models: an RNN and a BERTbased model. We apply the learned models along with source data via transfer learning to predict sections in EHRs. Our results show that medical literature can provide helpful supervision signal for this classification task.
引用
收藏
页码:4864 / 4873
页数:10
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