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Demographical Priors for Health Conditions Diagnosis Using Medicare Data

Authors :
Alhasoun, Fahad
Alhazzani, May
González, Marta C.
Publication Year :
2016

Abstract

This paper presents an example of how demographical characteristics of patients influence their susceptibility to certain medical conditions. In this paper, we investigate the association of health conditions to age of patients in a heterogeneous population. We show that besides the symptoms a patients is having, the age has the potential of aiding the diagnostic process in hospitals. Working with Electronic Health Records (EHR), we show that medical conditions group into clusters that share distinctive population age densities. We use Electronic Health Records from Brazil for a period of 15 months from March of 2013 to July of 2014. The number of patients in the data is 1.7 million patients and the number of records is 47 million records. The findings has the potential of helping in a setting where an automated system undergoes the task of predicting the condition of a patient given their symptoms and demographical information.<br />Comment: NIPS 2016 Workshop on Machine Learning for Health

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1612.02460
Document Type :
Working Paper