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Demand response via large scale charging of electric vehicles

机译:通过电动汽车的大规模充电满足需求

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The problem of centralized scheduling of large scale charging of electric vehicles (EVs) with demand response options is considered. A stochastic dynamic programming model is introduced in which the EV charging service provider faces stochastic demand, convex non-completion penalties, and random demand response requirements. Formulated as a restless multi-armed bandit problem, the EV charging problem is shown to be indexable, thus low complexity index policies exist. An enhancement of the Whittle's index policy based on spatial interchange according to the less laxity and longer processing time (LLLP) principle is presented. Numerical results illustrate the performance improvement and the capability of handling various operation uncertainties of the proposed index policy.
机译:考虑了需求响应选项的电动车辆大规模充电的集中调度问题。介绍了一种随机动态规划模型,其中EV充电服务提供商面临随机需求,凸不完全惩罚和随机需求响应要求。作为焦躁不安的多武装强盗问题,EV充电问题显示可分离,因此存在低复杂性指数策略。提高了根据空间交换的基于较少的松弛和更长的处理时间(LLLP)原理的削减的折奖策略。数值结果说明了性能提升和处理所提出的指数政策的各种运行不确定性的能力。

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