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Winning at the Starting Line: Joint Network Selection and Service Placement for Mobile Edge Computing

机译:在起跑线上取胜:移动边缘计算的联合网络选择和服务放置

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Mobile Edge Computing (MEC) is an emerging computing paradigm in which computational capabilities are pushed from the central cloud to the network edges. However, preserving the satisfactory quality-of-service (QoS) for user applications is non-trivial among multiple densely dispersed yet capacity constrained MEC nodes. This is mainly because both the access network and edge nodes are vulnerable to network congestion. Previous works are mostly limited to optimizing the QoS through dynamic service placement, while ignoring the critical effects of access network selection on the network congestion. In this paper, we study the problem of jointly optimizing the access network selection and service placement for MEC, towards the goal of improving the QoS by balancing the access, switching and communication delay. Specifically, we first design an efficient online framework to decompose the long-term optimization problem into a series of one-shot problems. To address the NP-hardness of the one-shot problem, we further propose an iteration-based algorithm to derive a computation efficient solution. Both rigorous theoretical analysis on the optimality gap and extensive trace-driven simulations validate the efficacy of our proposed solution.
机译:移动边缘计算(MEC)是一种新兴的计算范例,其中计算能力从中央云推到了网络边缘。但是,在多个密集分散但容量受限制的MEC节点中,为用户应用保留令人满意的服务质量(QoS)并非易事。这主要是因为接入网和边缘节点都容易受到网络拥塞的影响。先前的工作大多限于通过动态服务放置来优化QoS,而忽略了接入网络选择对网络拥塞的关键影响。在本文中,我们研究了联合优化MEC的接入网选择和服务放置的问题,以通过平衡接入,交换和通信延迟来提高QoS的目标。具体来说,我们首先设计一个有效的在线框架,将长期优化问题分解为一系列的一次性问题。为了解决一次性问题的NP难点,我们进一步提出了一种基于迭代的算法,以得出计算有效的解决方案。对最佳间隙的严格理论分析和大量跟踪驱动的仿真都验证了我们提出的解决方案的有效性。

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