Optimizing Patient Transitions to Skilled Nursing Facilities
Oguzhan Alagoz, Sebastian A. Alvarez Avenda\~no, John Oruongo, Gabriel, Zayas-Cab\'an

TL;DR
This paper develops a stochastic optimization framework to improve patient transfers to skilled nursing facilities, aiming to reduce readmissions and healthcare costs by selecting optimal SNF assignment policies based on patient and facility data.
Contribution
It introduces a novel stochastic model for optimizing patient transfers to SNFs, including conditions for simple policies and comparisons with more complex strategies.
Findings
Myopic policy is optimal under certain conditions.
Threshold-like structure of optimal policies identified.
Proposed policies can reduce readmissions compared to baseline.
Abstract
Hospital inpatient care costs is the largest component of health care expenditures in the US. At the same time, the number of non-hospital rehabilitative settings, such as skilled nursing facilities (SNFs), has increased. Lower costs and increased availability have made SNFs and other non-hospital rehabilitation settings a promising care alternative to hospitalization. To maximize their benefits, transitions to SNFs require special attention, since poorly coordinated transitions can lead to worse outcomes and higher costs via unnecessary hospital readmissions. This study presents a framework to improve care transitions based on the premise that certain SNFs may provide better care for some patients. We estimate readmission rates by SNF and patient types using observational data from a tertiary teaching hospital and nearby SNFs. We then analyze and solve a stochastic model optimizing…
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Taxonomy
TopicsGeriatric Care and Nursing Homes · Healthcare Operations and Scheduling Optimization · Healthcare Policy and Management
