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Analysis of Risk Factor Domains in Psychosis Patient Health Records

Authors :
Holderness, Eben
Miller, Nicholas
Cawkwell, Philip
Bolton, Kirsten
Pustejovsky, James
Meteer, Marie
Hall, Mei-Hua
Publication Year :
2018

Abstract

Readmission after discharge from a hospital is disruptive and costly, regardless of the reason. However, it can be particularly problematic for psychiatric patients, so predicting which patients may be readmitted is critically important but also very difficult. Clinical narratives in psychiatric electronic health records (EHRs) span a wide range of topics and vocabulary; therefore, a psychiatric readmission prediction model must begin with a robust and interpretable topic extraction component. We created a data pipeline for using document vector similarity metrics to perform topic extraction on psychiatric EHR data in service of our long-term goal of creating a readmission risk classifier. We show initial results for our topic extraction model and identify additional features we will be incorporating in the future.<br />Comment: Accepted at EMNLP-LOUHI 2018

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1809.05752
Document Type :
Working Paper