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An optimization based on simulation approach to the patient admission scheduling problem using a linear programing

C Granja1, B Almada-Lobo2, F Janela3

  • 1LEPABE, Department of Chemical Engineering, Faculty of Engineering, University of Porto, Portugal; Norwegian Centre for Integrated Care and Telemedicine, University Hospital of North Norway, Norway; Siemens S.A. Healthcare Sector, Portugal.

Journal of Biomedical Informatics
|September 8, 2014
PubMed
Summary
This summary is machine-generated.

Optimizing patient scheduling in diagnostic imaging can significantly reduce wait times. This study used simulation to cut total patient waiting time by 38%.

Keywords:
Diagnostic imagingOrganizational case studiesPatient admissionPersonnel staffing and schedulingProcess assessmentWorkflow

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Area of Science:

  • Health Services Management
  • Operations Research
  • Medical Informatics

Background:

  • Increasing patient waiting list lengths necessitate novel management strategies.
  • Current strategies involving private sector partnerships are insufficient to meet demand.
  • Balancing cost, quality, and efficiency in healthcare delivery is a critical challenge.

Purpose of the Study:

  • To present a simulation-based optimization approach for the Patient Admission Scheduling Problem.
  • To optimize patient flow within a diagnostic imaging department.
  • To minimize patient length of stay while controlling costs and maintaining care quality.

Main Methods:

  • Utilized modeling tools and simulation techniques for healthcare service optimization.
  • Applied a simulation-based optimization approach to the Patient Admission Scheduling Problem.
  • Employed a simulated annealing algorithm to optimize patient admission sequences.

Main Results:

  • The simulation effectively evaluated diagnostic imaging workflows.
  • Optimized patient admission sequences led to reduced total completion and waiting times.
  • Achieved average reductions of 5% in total completion time and 38% in total patient waiting time.

Conclusions:

  • Simulation-based optimization is effective for improving healthcare operational efficiency.
  • The proposed methods successfully reduced patient waiting times in diagnostic imaging.
  • This approach offers a viable strategy for managing healthcare resources and patient flow.