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Identification and Progression of Heart Disease Risk Factors in Diabetic Patients from Longitudinal Electronic Health
Jitendra Jonnagaddala1, Siaw-Teng Liaw2, Pradeep Ray3
1School of Public Health and Community Medicine, University of New South Wales, Sydney, NSW 2052, Australia ; Asia-Pacific Ubiquitous Healthcare Research Centre, University of New South Wales, Sydney, NSW 2052, Australia ; Prince of Wales Clinical School, University of New South Wales, Sydney, NSW 2052, Australia.
Abstract:
Heart disease is the leading cause of death worldwide. Therefore, assessing the risk of its occurrence is a crucial step in predicting serious cardiac events. Identifying heart disease risk factors and tracking their progression is a preliminary step in heart disease risk assessment. A large number of studies have reported the use of risk factor data collected prospectively. Electronic health record systems are a great resource of the required risk factor data. Unfortunately, most of the valuable information on risk factor data is buried in the form of unstructured clinical notes in electronic health records. In this study, we present an information extraction system to extract related information on heart disease risk factors from unstructured clinical notes using a hybrid approach. The hybrid approach employs both machine learning and rule-based clinical text mining techniques. The developed system achieved an overall microaveraged F-score of 0.8302.
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