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Detour: Dynamic Task Offloading in Software-Defined Fog for IoT Applications

机译: Detour:用于物联网应用程序的软件定义雾中的动态任务分载

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摘要

In this paper, we consider the problem of task offloading in a software-defined access network, where IoT devices are connected to fog computing nodes by multi-hop IoT access-points (APs). The proposed scheme considers the following aspects in a fog-computing-based IoT architecture: 1) optimal decision on local or remote task computation; 2) optimal fog node selection; and 3) optimal path selection for offloading. Accordingly, we formulate the multi-hop task offloading problem as an integer linear program (ILP). Since the feasible set is non-convex, we propose a greedy-heuristic-based approach to efficiently solve the problem. The greedy solution takes into account delay, energy consumption, multi-hop paths, and dynamic network conditions, such as link utilization and SDN rule-capacity. Experimental results show that the proposed scheme is capable of reducing the average delay and energy consumption by 12% and 21%, respectively, compared with the state of the art.
机译:在本文中,我们考虑了软件定义的访问网络中的任务卸载问题,在该网络中,IoT设备通过多跳IoT接入点(AP)连接到雾计算节点。所提出的方案在基于雾计算的物联网架构中考虑了以下方面:1)关于本地或远程任务计算的最佳决策; 2)最佳雾节点选择; 3)用于卸载的最佳路径选择。因此,我们将多跳任务卸载问题表述为整数线性程序(ILP)。由于可行集是非凸的,因此我们提出了一种基于贪婪启发式的方法来有效解决问题。贪婪的解决方案考虑了延迟,能耗,多跳路径以及动态网络条件,例如链路利用率和SDN规则容量。实验结果表明,与现有技术相比,该方案能够将平均延迟和能耗分别降低12%和21%。

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