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Smart cities recharged: Improving electrical vehicles recharging by routine-aware scheduling

机译:智慧城市充电:通过常规调度来改善电动汽车的充电

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In this paper, we propose a two-layered parking lot management system for charging scheduling of electric vehicles (EVs) considering a realistic vehicular mobility pattern. EVs are categorized in two groups based on their mobility patterns: Regular EVs and Irregular EVs. We use the data from an vehicular mobility trace collected from the Canton of Zurich for the regular EVs and a probabilistic pattern built on top of this Zurich trace aiming at modeling the behavior of irregular EVs. To the extend of our knowledge, this is the first EV charging scheduling study in the literature that utilizes a big-scale realistic vehicular mobility trace. The performance of the proposed system is compared with well-known routine unaware scheduling mechanisms (e.g., First Come First Serve) with regard to maximizing the parking lot revenue. Our results show that, our proposed system outperforms well-known routine unaware scheduling mechanisms and it is evident that real environments would benefit from using such parking lot management systems in Smart Cities.
机译:在本文中,我们提出了一种两层停车场管理系统,用于考虑现实的车辆出行方式的电动汽车(EV)的充电调度。根据电动汽车的出行方式,电动汽车分为两类:常规电动汽车和不规则电动汽车。我们使用从苏黎世州收集的用于常规电动汽车的车辆行驶轨迹数据,并基于此苏黎世轨迹之上建立的概率模式,旨在对非常规电动汽车的行为进行建模。据我们所知,这是文献中首次利用大型现实车辆机动性轨迹进行的电动汽车充电调度研究。在最大化停车场收益方面,将所提出的系统的性能与众所周知的例行不知道的调度机制(例如,先到先得)进行比较。我们的结果表明,我们提出的系统优于众所周知的常规无意识调度机制,并且很明显,在智能城市中使用此类停车场管理系统将使实际环境受益。

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