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A Capacity Allocation Planning Model for Integrated Care and Access Management

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  • Jivan Deglise‐Hawkinson
  • Jonathan E. Helm
  • Todd Huschka
  • David L. Kaufman
  • Mark P. Van Oyen

Abstract

The prevailing first‐come‐first‐served approach to outpatient appointment scheduling ignores differing urgency levels, leading to unnecessarily long waits for urgent patients. In data from a partner healthcare organization, we found in some departments that urgent patients were inadvertently waiting longer for an appointment than non‐urgent patients. This study develops a capacity allocation optimization methodology that reserves appointment slots based on urgency in a complicated, integrated care environment where multiple specialties serve multiple types of patients. This optimization reallocates network capacity to limit access delays (indirect waiting times) for initial and downstream appointments differentiated by urgency. We formulate this problem as a queueing network optimization and approximate it via deterministic linear optimization to simultaneously smooth workloads and guarantee access delay targets. In a case study of our industry partner we demonstrate the ability to (i) reduce urgent patient mean access delay by 27% with only a 7% increase in mean access delay for non‐urgent patients, and (ii) increase throughput by 31% with the same service levels and overtime.

Suggested Citation

  • Jivan Deglise‐Hawkinson & Jonathan E. Helm & Todd Huschka & David L. Kaufman & Mark P. Van Oyen, 2018. "A Capacity Allocation Planning Model for Integrated Care and Access Management," Production and Operations Management, Production and Operations Management Society, vol. 27(12), pages 2270-2290, December.
  • Handle: RePEc:bla:popmgt:v:27:y:2018:i:12:p:2270-2290
    DOI: 10.1111/poms.12941
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    Citations

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    Cited by:

    1. Seokjun Youn & H. Neil Geismar & Michael Pinedo, 2022. "Planning and scheduling in healthcare for better care coordination: Current understanding, trending topics, and future opportunities," Production and Operations Management, Production and Operations Management Society, vol. 31(12), pages 4407-4423, December.
    2. Miao Bai & Bjorn Berg & Esra Sisikoglu Sir & Mustafa Y. Sir, 2023. "Partially partitioned templating strategies for outpatient specialty practices," Production and Operations Management, Production and Operations Management Society, vol. 32(1), pages 301-318, January.
    3. Hu, Shu & Yu, Dennis Z. & Fu, Ke, 2023. "Online platforms’ warehouse capacity allocation strategies for multiple products," Transportation Research Part E: Logistics and Transportation Review, Elsevier, vol. 175(C).
    4. Wang, Jian-Jun & Zhang, Xinmou & Shi, Jim Junmin, 2023. "Hospital dual-channel adoption decisions with telemedicine referral and misdiagnosis," Omega, Elsevier, vol. 119(C).
    5. Burdett, Robert L & Corry, Paul & Yarlagadda, Prasad & Cook, David & Birgan, Sean & McPhail, Steven M, 2023. "A mathematical framework for regional hospital case mix planning and capacity appraisal," Operations Research Perspectives, Elsevier, vol. 10(C).
    6. Minglong Zhou & Melvyn Sim & Shao‐Wei Lam, 2022. "Advance admission scheduling via resource satisficing," Production and Operations Management, Production and Operations Management Society, vol. 31(11), pages 4002-4020, November.
    7. Esmaeil Keyvanshokooh & Pooyan Kazemian & Mohammad Fattahi & Mark P. Van Oyen, 2022. "Coordinated and Priority‐Based Surgical Care: An Integrated Distributionally Robust Stochastic Optimization Approach," Production and Operations Management, Production and Operations Management Society, vol. 31(4), pages 1510-1535, April.
    8. Na Geng & Xiaolan Xie, 2022. "Managing Advance Admission Requests for Obstetric Care," INFORMS Journal on Computing, INFORMS, vol. 34(2), pages 1224-1239, March.

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