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Using predictive risk modelling to identify patients with hidden health needs in an Aboriginal and Torres Strait
Gayani Tennakoon1, Rhema Vaithianathan2, Samantha L Pope3
1PhD, Postdoctoral Research Fellow, Institute for Social Science Research, University of Queensland, Brisbane, Qld; Research Consultant, Centre for Social Data Analytics, Auckland University of Technology, Auckland, New@Zealand.
Background And Objectives:
In partnership with an Aboriginal and Torres Strait Islander community-controlled health service, we explored the use of a machine learning tool to identify high-needs patients for whom services are harder to reach and, hence, who do not engage with primary care.
Method:
Using deidentified electronic health record data, two predictive risk models (PRMs) were developed to identify patients who were: (1) unlikely to have health checks as an indicator of not engaging with care; and (2) likely to rate their wellbeing as poor, as a measure of high needs.
Results:
According to the standard metrics, the PRMs were good at predicting health checks but showed low reliability for detecting poor wellbeing.
Discussion:
Results and feedback from clinicians were encouraging. With additional refinement, informed by clinic staff feedback, a deployable model should be feasible.
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