智慧城市中软件定义网络的智能服务实现

M. S. Munir, S. F. Abedin, Md. Golam Rabiul Alam, Nguyen H. Tran, C. Hong
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引用次数: 19

摘要

智慧城市是当前智能技术走向城市技术生态化成长和商业扩张的前景。此外,基于物联网(IoT)的智慧城市服务确保智慧市民的生活和福祉的卓越性。为了保证高质量的服务,每一项城市服务都从丰富的物联网节点中收集多维数据。因此,面对海量多维的智慧城市网络数据,交通的集中管理已成为一个严峻的挑战。因此,在本研究中,我们致力于通过引入基于软件定义网络(SDN)的智能服务实现,为密集的智慧城市网络解决这一问题,以完成来自多个智慧市民和服务提供商的服务请求。首先,我们为智慧城市环境建模了一个分布式软件定义的物联网网络,其中引入了一个基于雾的SDN控制器,该控制器带有智能引擎、雾单元和虚拟网格拓扑模块。然后,我们提出了一种基于强化学习(RL)的物联网智能算法,并提出了一种基于智能代理的服务实现算法来完成城市服务。我们使用基于雾的SDN控制器单元来实现基于SDN交换机的处理和等待延迟的学习模型,使SDN交换机能够向服务提供商提供智慧城市服务。最后,在仿真中,我们在收敛性和效用增益方面取得了较高的性能增益。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intelligent service fulfillment for software defined networks in smart city
Smart city is the prospect of current intellectual technology toward the ecological growth of urban technology and commercial expansion. In addition, the Internet of Things (IoT) based smart city services ensure the eminence of life and well-being to the smart citizens. In order to ensure quality services, each of city service gathers multidimensional data from abundant IoT nodes. Therefore, the centralized traffic management has become critically challenging for a large volume of multidimensional smart city network data. Consequently, in this research, we concentrate on solving this problem by introducing Software Defined Networks (SDN) based intelligent service fulfillment for dense smart city network to accomplish service requests from multiple smart citizens and service providers. First, we model a distributed software defined IoT network for smart city environment where introduce a fog-based SDN controller with an intelligent engine, fog unit, and virtual mesh topology module. Then, we propose a reinforcement learning (RL) based intelligent algorithm for IoT network, and that intelligent agent-based service fulfillment algorithm accomplishes the city service. We use fog based SDN controller unit to implement the learning model based on processing and waiting delay of the SDN switches that qualify the smart city services to the service providers. Finally, in the simulation, we have achieved higher performance gain for the proposed method in respect to the convergence and utility gain.
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