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Published on: October 25, 2024
Operationalizing a real-time scoring model to predict fall risk among older adults in the emergency department
Collin J Engstrom1,2, Sabrina Adelaine3, Frank Liao3
1Department of Emergency Medicine, UW-Madison, Madison, WI, United States.
Abstract:
Predictive models are increasingly being developed and implemented to improve patient care across a variety of clinical scenarios. While a body of literature exists on the development of models using existing data, less focus has been placed on practical operationalization of these models for deployment in real-time production environments. This case-study describes challenges and barriers identified and overcome in such an operationalization for a model aimed at predicting risk of outpatient falls after Emergency Department (ED) visits among older adults. Based on our experience, we provide general principles for translating an EHR-based predictive model from research and reporting environments into real-time operation.

