Predicting unplanned readmission after myocardial infarction from routinely collected administrative hospital data

Santu Rana1, Truyen Tran1, Wei Luo1

  • 1Centre for Pattern Recognition and Data Analytics, Deakin University, Locked Bag 20000, Geelong, Vic. 3220, Australia. Email: ; ; ;

Insights

High readmission rates after acute myocardial infarction (AMI) can be reduced. Routine hospital data, analyzed via an electronic medical record (EMR) model, effectively identifies patients at high risk for unplanned readmission.

Area of Science:

  • Cardiology
  • Health Informatics
  • Predictive Analytics

Background:

  • High readmission rates post-acute myocardial infarction (AMI) pose a significant challenge.
  • Existing risk stratification methods for AMI patients have limited predictive accuracy.

Purpose of the Study:

  • To apply hospital data for identifying patients at high risk of unplanned readmission after AMI.
  • To compare the predictive performance of an electronic medical record (EMR) model against established risk scores.

Main Methods:

  • A cohort of 1660 AMI admissions was analyzed.
  • Predictive models were developed using EMR data and validated against the HOSPITAL score and Elixhauser comorbidities.
  • Model performance was assessed for 30-day ischaemic heart disease readmission and 12-month all-cause readmission.

Main Results:

  • The EMR model demonstrated superior discrimination for 30-day ischaemic heart disease readmissions (AUC 0.78) and 12-month all-cause readmissions (AUC 0.72).
  • The EMR model identified high-risk patient cohorts with up to threefold increased readmission likelihood.
  • Key predictors included emergency department visits, cardiac procedures, renal impairment, and electrolyte imbalances.

Conclusions:

  • Routine hospital data, when analyzed through an EMR model, can effectively stratify AMI patients by readmission risk.
  • This approach facilitates targeted clinical interventions to potentially decrease readmission rates.
Abstract

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