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Emergency Department Online Patient-Caregiver Scheduling

机译:急诊部门在线患者 - 照顾者调度

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Emergency Departments (EDs) provide an imperative source of medical care. Central to the ED workflow is the patient-caregiver scheduling, directed at getting the right patient to the right caregiver at the right time. Unfortunately, common ED scheduling practices are based on ad-hoc heuristics which may not be aligned with the complex and partially conflicting ED's objectives. In this paper, we propose a novel online deep-learning scheduling approach for the automatic assignment and scheduling of medical personnel to arriving patients. Our approach allows for the optimization of explicit, hospital-specific multi-variate objectives and takes advantage of available data, without altering the existing workflow of the ED. In an extensive empirical evaluation, using real-world data, we show that our approach can significantly improve an ED's performance metrics.
机译:急诊部门(EDS)提供必要的医疗资源。 ED工作流程的核心是患者看护人的调度,指导在正确的时间让合适的患者送到右边的照顾者。 不幸的是,共同的ED调度实践基于Ad-hoc启发式,可能不会与复杂和部分冲突的ED目标对齐。 在本文中,我们提出了一种新的在线深度学习调度方法,用于自动分配和向抵达患者的医务人员调度。 我们的方法允许优化显式,医院特定的多变化目标并利用可用数据,而无需更改ED的现有工作流程。 在广泛的经验评估中,使用现实世界数据,我们表明我们的方法可以显着提高ED的性能指标。

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