Symbiotic simulation for the operational management of inpatient beds: model development and validation using Δ-method

Health Care Manag Sci. 2020 Mar;23(1):153-169. doi: 10.1007/s10729-019-09485-1. Epub 2019 Jun 3.

Abstract

In many modern hospitals, resources are shared between patients who require immediate care, and must be dealt with as they arrive (emergency patients), and those whose care requirements are partly known to the hospital some time in advance (elective patients). Catering for these two types of patients is a challenging short-term operational decision-making problem, since some portion of each resource must be set aside for emergency patients when planning for the number and type of elective patients to admit. This paper shows how symbiotic simulation can help hospitals with important short-term operational decision making. We demonstrate how a symbiotic simulation model can be developed from an existing simulation model by adding the ability to load the state of the physical system at run-time and by making use of conditional length-of-stay distributions. The model is parameterised using 18 months of patient administrative data from an Anonymised General Hospital. Further, we propose a new Δ-Method that is suitable for validating a stochastic symbiotic simulation model. We demonstrate the benefit of our symbiotic simulation by showing how it can be used as an early warning system, and how additional patient-level information which might only become available after admission, can affect the predicted bed census.

Keywords: Bed management; OR in health services; Symbiotic simulation; Validation.

MeSH terms

  • Bed Occupancy / methods*
  • Computer Simulation*
  • Efficiency, Organizational
  • Emergency Service, Hospital / organization & administration
  • Hospital Administration / methods*
  • Hospitals, General
  • Humans
  • Inpatients / statistics & numerical data
  • Length of Stay / statistics & numerical data
  • Models, Statistical
  • Patient Admission / statistics & numerical data*
  • Resource Allocation