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Optimal Schedule of Mobile Edge Computing Under Imperfect CSI

机译:不完美CSI下移动边缘计算的最佳计划

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Mobile edge computing (MEC), as a prospective computing paradigm, can augment the computation capabilities of mobile devices through offloading the complex computational tasks from simple devices to MEC-enabled base station (BS) covering them. However, how to achieve optimal schedule remains a problem due to various practical challenges including imperfect estimation of channel state information (CSI), stochastic tasks arrivals and time-varying channel situation. By using Lyapunov optimization theory and Lagrange dual decomposition technique, we propose an optimal dynamic offloading and resource scheduling (oDors) approach to maximize a system utility balancing throughput and fairness under imperfect estimation of CSI. We derive the analytical bounds for the time-averaged data queues length and system throughput achieved by the proposed approach which depends on the channel estimation error. We show that without prior knowledge of tasks arrivals and wireless channels, oDors achieves a system capacity which can arbitrarily approach the optimal system throughput. Simulation results confirm the theoretical analysis on the performance of oDors.
机译:移动边缘计算(MEC)作为潜在计算范例,可以通过将复杂的计算任务从简单的设备卸载到覆盖它们的MEC的基站(BS)来增加移动设备的计算能力。然而,由于各种实际挑战,如何实现最佳时间表仍然是一个问题,包括信道状态信息(CSI)的不完美估计,随机任务到达和时变信道情况。通过使用Lyapunov优化理论和拉格朗日双分解技术,我们提出了一种最佳的动态卸载和资源调度(气味)方法,以最大限度地提高CSI的不完美估计的系统实用程序平衡吞吐量和公平性。我们通过所提出的方法实现了时间平均数据队列长度和系统吞吐量的分析界限,这取决于信道估计误差。我们表明,如果没有先验的任务到达和无线通道的知识,则气味可以实现可以任意接近最佳系统吞吐量的系统容量。仿真结果证实了气味性能的理论分析。

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