• Int. J. Clin. Pract. · Aug 2021

    Multicenter Study

    Predicting all-cause unplanned readmission within 30 days of discharge using electronic medical record data: a multi-center study.

    • Sifat Sharmin, Johannes J Meij, Jeffrey D Zajac, MoodieAlan RobARMelbourne School of Population and Global Health, Faculty of Medicine, Dentistry and Health Sciences, University of Melbourne, Melbourne, VIC, Australia., and Andrea B Maier.
    • Clinical Outcomes Research Unit, Department of Medicine, Faculty of Medicine, Dentistry and Health Sciences, University of Melbourne, Melbourne, VIC, Australia.
    • Int. J. Clin. Pract. 2021 Aug 1; 75 (8): e14306e14306.

    ObjectiveTo develop a predictive model for identifying patients at high risk of all-cause unplanned readmission within 30 days after discharge, using administrative data available before discharge.Materials And MethodsHospital administrative data of all adult admissions in three tertiary metropolitan hospitals in Australia between July 01, 2015, and July 31, 2016, were extracted. Predictive performance of four mixed-effect multivariable logistic regression models was compared and validated using a split-sample design. Diagnostic details (Charlson Comorbidity Index CCI, components of CCI, and primary diagnosis categorised into International Classification of Diseases chapters) were added gradually in the clinically simplified model with socio-demographic, index admission, and prior hospital utilisation variables.ResultsOf the total 99 470 patients admitted, 5796 (5.8%) were re-admitted through the emergency department of three hospitals within 30 days after discharge. The clinically simplified model was as discriminative (C-statistic 0.694, 95% CI [0.681-0.706]) as other models and showed excellent calibration. Models with diagnostic details did not exhibit any substantial improvement in predicting 30-days unplanned readmission.ConclusionWe propose a 10-item predictive model to flag high-risk patients in a diverse population before discharge using readily available hospital administrative data which can easily be integrated into the hospital information system.© 2021 The Authors. International Journal of Clinical Practice published by John Wiley & Sons Ltd.

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