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Latency and Reliability-Aware Workload Assignment in IoT Networks With Mobile Edge Clouds

机译:具有移动边缘云的物联网网络中的延迟和可靠性感知工作负载分配

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Along with the dramatic increase in the number of IoT devices, different IoT services with heterogeneous QoS requirements are evolving with the aim of making the current society smarter and more connected. In order to deliver such services to the end users, the network infrastructure has to accommodate the tremendous workload generated by the smart devices and their heterogeneous and stringent latency and reliability requirements. This would only be possible with the emergence of ultra reliable low latency communications (uRLLC) promised by 5G. Mobile Edge Computing (MEC) has emerged as an enabling technology to help with the realization of such services by bringing the remote computing and storage capabilities of the cloud closer to the users. However, integrating uRLLC with MEC would require the network operator to efficiently map the generated workloads to MEC nodes along with resolving the trade-off between the latency and reliability requirements. Thus, we study in this paper the problem of Workload Assignment (WA) and formulate it as a Mixed Integer Program (MIP) to decide on the assignment of the workloads to the available MEC nodes. Due to the complexity of the WA problem, we decompose the problem into two subproblems; Reliability Aware Candidate Selection (RACS) and Latency Aware Workload Assignment (LAWA-MIP). We evaluate the performance of the decomposition approach and propose a more scalable approach; Tabu meta-heuristic (WA-Tabu). Through extensive numerical evaluation, we analyze the performance and show the efficiency of our proposed approach under different system parameters.
机译:随着IoT设备数量的急剧增加,具有异构QoS要求的各种IoT服务也在不断发展,目的是使当前的社会变得更加智能和互联。为了将此类服务交付给最终用户,网络基础架构必须适应由智能设备产生的巨大工作负载及其异构和严格的延迟以及可靠性要求。只有5G承诺提供超可靠的低延迟通信(uRLLC),这才有可能实现。移动边缘计算(MEC)成为一种启用技术,通过使云的远程计算和存储功能更接近用户,可以帮助实现此类服务。但是,将uRLLC与MEC集成将要求网络运营商有效地将生成的工作负载映射到MEC节点,并解决延迟和可靠性要求之间的权衡问题。因此,我们在本文中研究工作负载分配(WA)的问题,并将其公式化为混合整数程序(MIP),以决定将工作负载分配给可用的MEC节点。由于WA问题的复杂性,我们将问题分解为两个子问题。可靠性感知候选选择(RACS)和延迟感知工作负载分配(LAWA-MIP)。我们评估分解方法的性能,并提出一种更具可扩展性的方法。禁忌元启发式(WA-Tabu)。通过广泛的数值评估,我们分析了性能并显示了在不同系统参数下我们提出的方法的效率。

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