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Improving the efficiency of the operating room environment with an optimization and machine learning model

机译:通过优化和机器学习模型提高手术室环境的效率

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摘要

The operating room is a major cost and revenue center for most hospitals. Thus, more effective operating room management and scheduling can provide significant benefits. In many hospitals, the post-anesthesia care unit (PACU), where patients recover after their surgical procedures, is a bottleneck. If the PACU reaches capacity, patients must wait in the operating room until the PACU has available space, leading to delays and possible cancellations for subsequent operating room procedures. We develop a generalizable optimization and machine learning approach to sequence operating room procedures to minimize delays caused by PACU unavailability. Specifically, we use machine learning to estimate the required PACU time for each type of surgical procedure, we develop and solve two integer programming models to schedule procedures in the operating rooms to minimize maximum PACU occupancy, and we use discrete event simulation to compare our optimized schedule to the existing schedule. Using data from Lucile Packard Children's Hospital Stanford, we show that the scheduling system can significantly reduce operating room delays caused by PACU congestion while still keeping operating room utilization high: simulation of the second half of 2016 shows that our model could have reduced total PACU holds by 76% without decreasing operating room utilization. We are currently working on implementing the scheduling system at the hospital.
机译:手术室是大多数医院的主要成本和收入中心。因此,更有效的操作室管理和调度可以提供显着的益处。在许多医院中,麻醉后护理单位(PACU),患者在外科手术后恢复,是一个瓶颈。如果PACU达到能力,患者必须在手术室等待,直到PACU提供空间,导致随后的手术室程序延迟和可能取消。我们开发了一个更宽的优化和机器学习方法来序列操作室程序,以最大限度地减少PACU不可用造成的延迟。具体而言,我们使用机器学习来估算每种类型的外科手术所需的PACU时间,我们开发和解决两个整数编程模型来安排手术室中的程序,以最大限度地减少PALU占用,并且我们使用离散的事件模拟来比较我们的优化计划到现有计划。使用Lucile Packard儿童医院斯坦福国的数据,我们表明调度系统可以显着减少PACU拥塞造成的手术室延迟,同时仍然保持手术室利用率高:2016年下半年的仿真表明,我们的模型可能会降低总PACU持量76%而不降低手术室利用率。我们目前正在努力在医院实施调度系统。

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