软件部署
备份
计算机科学
弹性(材料科学)
模块化设计
紧急医疗服务
钥匙(锁)
无人机
资源配置
运筹学
风险分析(工程)
可靠性(半导体)
灵活性(工程)
资源(消歧)
服务(商务)
帧(网络)
可靠性工程
鉴定(生物学)
应急管理
运营管理
时间限制
约束(计算机辅助设计)
成本效益
事故管理
计算机安全
持续时间(音乐)
作者
Run Zhang,Fangfang Wu,Xiandong Zhang,Bo Chen
标识
DOI:10.1287/msom.2024.1027
摘要
Problem Definition. Rapid medical response is critical for out-of-hospital cardiac arrest (OHCA) cases. Using drones to deliver Automated External Defibrillators (AEDs) can significantly enhance the chances of survival by reducing delivery time. This paper aims to optimize the strategic deployment of drones and disposable AEDs within a budget-constrained Emergency Medical Services (EMS) system, using incomplete OHCA data. Unlike previous research, we focus on maximizing the number of timely AED deliveries within a critical window, rather than improving average or tail delivery time metrics. Methodology/Results. We frame this problem as a Modular Capacitated Maximal Covering Location Problem (MC-MCLP), incorporating a time constraint for AED delivery within a narrow therapeutic window. Our model can help alleviate resource imbalances across diverse service regions. We address demand variability using a distributionally robust optimization approach, which enhances decision resilience amid real-world uncertainties. Extensive testing reveals the impact of key parameters on the model, highlighting trade-offs between operational efficiency and both reliability and fairness. A case study of OHCA incidents in Virginia Beach demonstrates our model’s effectiveness in significantly increasing the number of patients reached within the critical time period. Managerial Implications. Our framework ensures prompt assistance to OHCA cases within the vital intervention window while promoting equitable resource allocation across regions. This approach addresses the primary challenges in EMS planning by improving response times within the crucial timeframe and establishing backup emergency resources. Our proposed methodology will enhance OHCA survival rates and optimize EMS resource distribution.
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