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Vehicle Routing for Resource Management in Time-Phased Deployment of Sensor Networks

机译:传感器网络的时间分阶段部署中资源管理的车辆路由

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Time-phased sensor-network deployment refers to the delivery of a set of sensors to their predetermined locations at exact times by a fleet of vehicles. Applications for such network deployments include wilderness search and rescue (WiSAR) and wildfire monitoring, where desirable resource management would imply allowing the vehicles to perform other tasks between deliveries. The goal of this paper is, thus, to formulate and solve a vehicle-routing problem (VRP) for such just-in-time time-phased sensor-network deployments. The proposed optimization method for the modified VRP outlined herein has two primary novelties: 1) the consideration of spare time as the objective function and 2) the use of a targeted local-search (LS) method. The spare-time objective function was formulated to address the uniqueness of the modified routing problem at hand. The targeted LS algorithm, on the other hand, was developed to tangibly improve the efficiency of the search for the optimal values of the chosen objective function. The proposed vehicle-route-planning method was validated via a range of simulated WiSAR scenarios, some of which are included herein. The robustness of the method to variations in problem parameters was also investigated.Note to Practitioners-The resource-management problem addressed in this paper is applicable to scenarios wherein a fleet of vehicles visits a set of locations at predetermined times to provide services while carrying out other tasks in-between. Such time-phased applications include the deployment of sensor networks for wilderness search and rescue or wildfire monitoring, patient transportation services that can handle emergencies, and courier services that can cope with urgent express requests. The primary inputs to the proposed vehicle-routing algorithm are: 1) the physical characteristics of the vehicles (i.e., speed, capacity, and operation time limit) and 2) a service plan (i.e., service locations and corresponding exact service times). The algorithm yields best possible routes (a string of assigned service locations) for all the vehicles, by maximizing spare time between deliveries (within a reasonable computation time). The method also allows for changes in service plan in real time.
机译:时间相位的传感器 - 网络部署是指在车辆的车队的精确时间将一组传感器传送到其预定位置。此类网络部署的应用包括荒野搜索和救援(Wisar)和野火监控,在那里需要所需的资源管理意味着允许车辆在交付之间执行其他任务。因此,本文的目标是为这种惯用时间分阶段的传感器网络部署制定和解决车辆路由问题(VRP)。本文所述的修改VRP的所提出的优化方法有两个主要的新奇:1)考虑业余时间作为目标函数,2)使用目标本地搜索(LS)方法。制定业务时间目标函数以解决修改后的路由问题的唯一性。另一方面,目标LS算法是开发的,以改变搜索所选择的目标函数的最佳值的搜索效率。通过一系列模拟的智慧场景验证了所提出的车辆路线规划方法,其中一些内容包括在此。还研究了解决问题参数的变化方法的鲁棒性。对于从业者来说,本文解决的资源管理问题适用于其中车辆的车辆在预定时间访问一组位置以提供服务的情况其他任务之间。这种时间分阶段的应用包括部署传感器网络,用于荒野搜索和救援或野火监测,可以处理能够应对紧急表达要求的紧急情况的患者运输服务。所提出的车辆路由算法的主要输入包括:1)车辆的物理特性(即速度,容量和操作时间限制)和2)服务计划(即服务位置和相应的确切服务时间)。通过最大化交付之间的空余时间(在合理的计算时间内)来产生所有车辆的最佳路由(为所有车辆提供最佳路由(一串分配的服务位置)。该方法还允许实时进行服务计划的变化。

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