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A Multi-Class Dispatching and Charging Scheme for Autonomous Electric Mobility On-Demand

机译:一种按需自主调度的多类调度充电方案

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Despite the significant advances in vehicle automation and electrification, the next-decade aspirations for massive deployments of autonomous electric mobility on demand (AEMoD) services are still threatened by two major bottlenecks, namely the computational and charging delays. This paper proposes a solution for these two challenges by suggesting the use of fog computing for AEMoD systems, and developing an optimized multi-class charging and dispatching scheme for its vehicles. A queuing model representing the proposed multi-class charging and dispatching scheme is first introduced. The stability conditions of this model and the number of classes that fit the charging capabilities of any given city zone are then derived. Decisions on the proportions of each class vehicles to partially/fully charge, or directly serve customers are then optimized using a stochastic linear program that minimizes the maximum response time of the system. Results show the merits of our proposed model and optimized decision scheme compared to both the always-charge and the equal split schemes.
机译:尽管在汽车自动化和电气化方面取得了重大进步,但大规模部署自动驾驶随需应变(AEMoD)服务的下一个十年愿望仍受到两个主要瓶颈的威胁,即计算和充电延迟。本文提出了针对这两个挑战的解决方案,建议在AEMoD系统中使用雾计算,并为其车辆开发一种优化的多类收费和调度方案。首先介绍表示所提出的多类计费和调度方案的排队模型。然后得出该模型的稳定性条件和适合任何给定市区收费能力的类别数量。然后,使用随机线性程序优化关于每种级别车辆部分/完全充电或直接为客户服务的比例的决策,以最大程度地缩短系统的最大响应时间。结果表明,与总是收费计划和等分计划相比,我们提出的模型和优化决策方案的优点。

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