RoPE: An Architecture for Adaptive Data-Driven Routing Prediction at the Edge

RoPE: An Architecture for Adaptive Data-Driven Routing Prediction at the Edge
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DOI:
10.1109/tnsm.2020.2980899
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发表时间:
2020-06
影响因子:
5.3
通讯作者:
Alessio Sacco;Flavio Esposito;G. Marchetto
Alessio Sacco;Flavio Esposito;G. Marchetto
中科院分区:
计算机科学2区
文献类型:
--
作者:
Alessio Sacco;Flavio Esposito;G. Marchetto

文献摘要

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低延迟应用程序的需求促进了对边缘计算的兴趣,边缘计算是一种在网络边缘本地处理数据的最新范例。交付具有低延迟和高带宽要求的服务的挑战已经看到了软件定义网络(SDN)解决方案的蓬勃发展,这些解决方案利用自组织数据驱动的统计学习解决方案来动态地引导边缘计算资源。在本文中,我们提出了RoPE,一个架构,适应底层边缘网络的路由策略的基础上,未来的可用带宽。带宽预测方法是一种我们根据所需的解决方案时间和可用数据动态调整的策略。SDN控制器跟踪过去的链路负载,并且如果当前路径被预测为拥塞,则采用新的路由。我们在不同的用例应用程序上测试了RoPE,比较了不同的知名预测策略。我们的评估结果表明,我们的自适应解决方案优于其他ad-hoc路由解决方案和基于边缘的应用程序,反过来,受益于自适应路由,只要预测是准确的,容易获得。
The demand of low latency applications has fostered interest in edge computing, a recent paradigm in which data is processed locally, at the edge of the network. The challenge of delivering services with low-latency and high bandwidth requirements has seen the flourishing of Software-Defined Networking (SDN) solutions that utilize ad-hoc data-driven statistical learning solutions to dynamically steer edge computing resources. In this paper, we propose RoPE, an architecture that adapts the routing strategy of the underlying edge network based on future available bandwidth. The bandwidth prediction method is a policy that we adjust dynamically based on the required time-to-solution and on the available data. An SDN controller keeps track of past link loads and takes a new route if the current path is predicted to be congested. We tested RoPE on different use case applications comparing different well-known prediction policies. Our evaluation results demonstrate that our adaptive solution outperforms other ad-hoc routing solutions and edge-based applications, in turn, benefit from adaptive routing, as long as the prediction is accurate and easy to obtain.