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Delay-Aware Online Service Scheduling in High-Speed Railway Communication Systems

机译:高速铁路通信系统中的延迟感知在线服务调度

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We investigate the downlink service scheduling problem in relay-assisted high-speed railway (HSR) communication systems, taking into account stochastic packet arrivals and quality-of-service (QoS) requirements. The scheduling problem is formulated as an infinite-horizon average cost constrained Markov decision process (MDP), where the scheduling actions depend on the channel state information (CSI) and the queue state information (QSI). Our objective is to find a policy that minimizes the average end-to-end delay through scheduling actions under the service delivery ratio constraints. To address the challenge of centralized control and high complexity of traditional MDP approaches, we propose a distributed online scheduling algorithm based on approximate MDP and stochastic learning, where the scheduling policy is a function of the local CSI and QSI only. Numerical experiments are carried out to show the performance of the proposed algorithm.
机译:我们研究了中继辅助高速铁路(HSR)通信系统中的下行链路服务调度问题,考虑到随机数据包到达和服务质量(QoS)要求。 调度问题被制定为无限范围平均成本约束的马尔可夫决策过程(MDP),其中调度操作取决于信道状态信息(CSI)和队列状态信息(QSI)。 我们的目标是找到一种策略,可以通过在服务交付比率约束下调度操作来最大限度地降低平均端到端延迟。 为解决集中控制和传统MDP方法的高复杂性的挑战,我们提出了一种基于近似MDP和随机学习的分布式在线调度算法,其中调度策略仅是本地CSI和QSI的函数。 进行数值实验以显示所提出的算法的性能。

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