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Energy-Efficient Adaptive Resource Management for Real-Time Vehicular Cloud Services

机译:实时车辆云服务的节能自适应资源管理

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Providing real-time cloud services to Vehicular Clients (VCs) must cope with delay and delay-jitter issues. Fog computing is an emerging paradigm that aims at distributing small-size self-powered data centers (e.g., Fog nodes) between remote Clouds and VCs, in order to deliver data-dissemination real-time services to the connected VCs. Motivated by these considerations, in this paper, we propose and test an energy-efficient adaptive resource scheduler for Networked Fog Centers (NetFCs). They operate at the edge of the vehicular network and are connected to the served VCs through Infrastructure-to-Vehicular (I2V) TCP/IP-based single-hop mobile links. The goal is to exploit the locally measured states of the TCP/IP connections, in order to maximize the overall communication-plus-computing energy efficiency, while meeting the application-induced hard QoS requirements on the minimum transmission rates, maximum delays and delay-jitters. The resulting energy-efficient scheduler jointly performs: (i) admission control of the input traffic to be processed by the NetFCs; (ii) minimum-energy dispatching of the admitted traffic; (iii) adaptive reconfiguration and consolidation of the Virtual Machines (VMs) hosted by the NetFCs; and, (iv) adaptive control of the traffic injected into the TCP/IP mobile connections. The salient features of the proposed scheduler are that: (i) it is adaptive and admits distributed and scalable implementation; and, (ii) it is capable to provide hard QoS guarantees, in terms of minimum/maximum instantaneous rates of the traffic delivered to the vehicular clients, instantaneous rate-jitters and total processing delays. Actual performance of the proposed scheduler in the presence of: (i) client mobility; (ii) wireless fading; and, (iii) reconfiguration and consolidation costs of the underlying NetFCs, is numerically tested and compared against the corresponding ones of some state-of-the-art schedulers, under both synthetically generated and measured real-world workload traces.
机译:向车辆客户端(VCS)提供实时云服务必须应对延迟和延迟抖动问题。雾计算是一种新兴范式,旨在在远程云和VCS之间分发小型自动数据中心(例如,雾节点),以便向连接的VCS提供数据传播实时服务。在本文中,通过这些考虑因素,我们提出并测试了网络雾中心(Netfcs)的节能自适应资源调度程序。它们在车辆网络的边缘运行,通过基础设施到车辆(I2V)基于TCP / IP的单跳移动链路连接到服务的VC。目标是利用TCP / IP连接的本地测量状态,以最大限度地提高整体通信加计算能源效率,同时满足应用程序引起的硬质QoS要求,最小传输速率,最大延迟和延迟 - 乱七八糟。由此产生的节能调度器联合执行:(i)通过Netfcs处理的输入流量的准入控制; (ii)入院交通的最低能量调度; (iii)由Netfcs托管的虚拟机(VM)的自适应重新配置和整合;并且,(iv)对注入TCP / IP移动连接的流量的自适应控制。所提出的调度程序的突出特征是:(i)它是自适应的,并承认分布式和可扩展的实现; (ii)(ii)它能够以最小/最大瞬时速率提供给车辆客户端,瞬时速率 - 抖动和总处理延误的最小/最大瞬时速度来提供硬质QoS保证。在存在的情况下,建议的调度程序的实际表现:(i)客户移动; (ii)无线衰落; (iii)(iii)底层Netfcs的重新配置和整合成本在数值上测试,并在综合生成和测量的现实世界工作负载迹线下与某些最先进的调度员进行了数量测试。

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