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DEA病院効率×再入院予測モデル×
分野医療経営学医療経営学
系統Process / pipelineProcess / pipeline
提唱年19781998
提唱者Abraham Charnes, William Cooper, Edward RhodesHealthcare data analytics and outcomes research
種類Non-parametric frontier estimation techniqueLogistic regression and machine learning methodology
原典Charnes, A., Cooper, W. W., & Rhodes, E. (1978). Measuring the efficiency of decision making units. European Journal of Operational Research, 2(6), 429–444. DOI ↗Jencks, S. F., Williams, M. V., & Coleman, E. A. (2009). Rehospitalizations among patients in the Medicare fee-for-service program. New England Journal of Medicine, 360(14), 1418–1428. DOI ↗
別名Hospital DEA, Healthcare DEAReadmission Risk Prediction, Hospital Readmission Forecasting
関連55
概要Data Envelopment Analysis (DEA) is a linear programming technique for measuring the relative efficiency of multiple hospitals using multiple inputs and outputs. Introduced by Charnes, Cooper, and Rhodes in 1978, DEA has become the standard method for benchmarking hospital performance in healthcare systems worldwide.Hospital readmission prediction models use statistical and machine learning techniques to identify patients at high risk of returning to the hospital shortly after discharge. These models guide targeted discharge planning and follow-up to improve outcomes and reduce costs.
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ScholarGate手法を比較: DEA Hospital Efficiency · Hospital Readmission Prediction Model. 2026-06-19に以下より取得 https://scholargate.app/ja/compare