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Vehicular datacenter modeling for cloud computing: Considering capacity and leave rate of vehicles

机译:用于云计算的车载数据中心建模:考虑车辆的容量和离开率

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In this paper, we propose a vehicular datacenter model in a parking lot, where vehicles can be considered as a resource for cloud computing. One of the crucial issues facing the vehicular datacenter is failures caused by arrival and departure of dynamic resources. These failures result in performance degradation of the execution time because the task must be restarted. In order to reduce execution time and mitigate the effects of uncertainty, we propose a vehicular datacenter model that makes use of a checkpoint mechanism. We first characterize the dynamic vehicles in parking lots considering each vehicle’s capacity and leave rate. We derive the expected execution time to analyze the characteristics of vehicles and propose a resource selection strategy based on that time. We also derive the optimal number of checkpoints for each vehicle that maximizes the efficiency of the checkpoint. We demonstrate the results of our analysis through various evaluations.
机译:在本文中,我们提出了一个停车场中的车辆数据中心模型,在该模型中,可以将车辆视为云计算的资源。车载数据中心面临的关键问题之一是动态资源的到达和离开导致的故障。这些失败导致执行时间的性能下降,因为必须重新启动任务。为了减少执行时间并减轻不确定性的影响,我们提出了一种利用检查点机制的车载数据中心模型。我们首先根据停车场的动态车辆的容量和离开率对其进行表征。我们得出预期的执行时间以分析车辆的特性,并基于该时间提出资源选择策略。我们还得出了每辆车的最佳检查点数量,从而使检查点的效率最大化。我们通过各种评估来证明我们的分析结果。

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