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Haigla korduvhospitaliseerimise ennustusmudel×Patsiendi voolu simulatsioon×
ValdkondTervishoiukorraldusTervishoiukorraldus
PerekondProcess / pipelineProcess / pipeline
Tekkeaasta19981990
LoojaHealthcare data analytics and outcomes researchOperations research and management science
TüüpLogistic regression and machine learning methodologyDiscrete event simulation technique
AlgallikasJencks, 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 ↗Pidd, M. (1992). Computer Simulation in Management Science (3rd ed.). John Wiley & Sons. ISBN: 9780471939314
RööpnimetusedReadmission Risk Prediction, Hospital Readmission ForecastingHealthcare DES, Patient Movement Simulation
Seotud55
KokkuvõteHospital 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.Discrete Event Simulation (DES) is a computational technique that models the movement of patients through healthcare facilities by simulating individual patient journeys and interactions with resources (staff, beds, equipment). DES allows realistic representation of complex, stochastic healthcare processes and supports 'what-if' analysis without disrupting live operations.
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  2. 3 Allikad
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  1. v1
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  3. PUBLISHED

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ScholarGateVõrdle meetodeid: Hospital Readmission Prediction Model · Patient Flow Simulation. Loetud 2026-06-20 aadressilt https://scholargate.app/et/compare