H2NDN: Supporting Connected Vehicle Applications with Hierarchical Hyperbolic NDN

Ning Yang, Kang-Peng Chen, Yaoqing Liu
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引用次数: 1

Abstract

Connected vehicle (CV) has emerged as a new computing and networking paradigm recently that can enable many beneficial CV applications. In this paper, we argue that Named Data Networking (NDN) presents a good synergy with the needs of CV applications. This drives us to propose an NDN based CV application framework with a distributed data service model. However, the fast mobility and vast moving area of vehicles lead to significant challenges on the efficiency and scalability of the underlying NDN backbone in the framework. To handle this issue, we propose a novel hierarchical hyperbolic NDN architecture (H2NDN). By taking advantage of the location dependency of CV applications, we design a hierarchical router topology and the associated namespace. This enables Interest packets from CV applications to be forwarded towards Data (cache) holders efficiently through static FIB configuration. However, the resultant hierarchical routing can easily overload high-level routers. Thus, we further integrate hyperbolic routing into the architecture through carefully designed hyperbolic planes in the hierarchical topology. As a result, the load is better balanced to ensure the overall scalability. Finally, extensive NDNsim based simulation with real traffic data proves the efficiency and scalability of the proposed H2NDN architecture.
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H2NDN:通过分层双曲NDN支持车联网应用
互联汽车(CV)最近成为一种新的计算和网络范式,可以实现许多有益的CV应用。在本文中,我们认为命名数据网络(NDN)与CV应用的需求有很好的协同作用。这促使我们提出了一个基于NDN的分布式数据服务模型的CV应用框架。然而,车辆的快速移动性和广阔的移动区域对框架中底层NDN骨干网的效率和可扩展性提出了重大挑战。为了解决这个问题,我们提出了一种新的分层双曲NDN架构(H2NDN)。通过利用CV应用的位置依赖性,我们设计了一个分层路由器拓扑和相关的命名空间。这使得来自CV应用程序的兴趣数据包可以通过静态FIB配置有效地转发给数据(缓存)持有者。然而,由此产生的分层路由很容易使高级路由器过载。因此,我们通过在分层拓扑中精心设计的双曲平面,进一步将双曲路由集成到体系结构中。因此,负载得到了更好的平衡,以确保整体的可伸缩性。最后,利用真实流量数据进行了大量基于NDNsim的仿真,验证了所提出的H2NDN架构的效率和可扩展性。
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LANMAN 2019 Copyright Page H2NDN: Supporting Connected Vehicle Applications with Hierarchical Hyperbolic NDN Resource optimization in Visible Light Communication for Internet of Things Managing Background Traffic in Cellular Networks Living on the Edge: Serverless Computing and the Cost of Failure Resiliency
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