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Balancing Cost and Dissatisfaction in Online EV Charging under Real-time Pricing

机译:实时定价下在线电动汽车充电的成本与不平衡

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We consider an increasingly popular demand-response scenario where a user schedules the flexible electric vehicle (EV) charging load in response to real-time electricity prices. The objective is to minimize the total charging cost with user dissatisfaction taken into account. We focus on the online setting where neither accurate prediction nor distribution of future real-time prices is available to the user when making irrevocable charging decision in each time slot. The emphasis on considering user dissatisfaction and achieving optimal competitive ratio differentiates our work from existing ones and makes our study uniquely challenging. Our key contribution is two simple online algorithms with the best possible competitive ratio among all deterministic algorithms. The optimal competitive ratio is upper-bounded by min {√α/p
机译:我们考虑了一种日益流行的需求响应方案,即用户根据实时电价计划灵活的电动汽车(EV)充电负荷。目的是在考虑到用户不满的情况下使总充电成本最小化。我们专注于在线设置,在每个时间段做出不可撤销的计费决策时,用户都无法获得准确的预测或未来实时价格的分配。重视考虑用户的不满和实现最佳竞争比使我们的工作与现有工作有所不同,这使我们的研究具有独特的挑战性。我们的主要贡献是在所有确定性算法中,两个具有最佳竞争比的简单在线算法。最佳竞争比上限为min {√α/ p

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