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A Context-aware Radio Access Technology selection mechanism in 5G mobile network for smart city applications

机译:5G移动网络中面向智慧城市应用的上下文感知无线电接入技术选择机制

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The Fifth Generation (5G) mobile network will revolutionize the way of communication by supporting new innovative applications that require low latency and high data rates in smart city environments. In order to meet these applications' requirements, Ultra-Dense Network (UDN) is considered as one of the promising technological enablers in 5G. 5G UDN deployments are envisaged to be heterogeneous and dense, mainly through the provisioning of small cells such as picocells and femtocells, from different Radio Access Technologies (RATs). Nevertheless, various studies have reported that the densification is not always beneficial to the network performance. As the network density increases, this will pose further requirements and complexity of determining which RAT a user should connect with at a given time. Hence, an efficient RAT selection mechanism to choose the best Radio Access Technology among multiple available ones is a must. This paper proposes a new Context-aware Radio Access Technology (CRAT) selection mechanism that examines the context of the user and the networks in choosing the appropriate RAT to serve. A simplified conceptual model of the Context-aware RAT selection is introduced. Then, a mathematical model of CRAT considering the user and network context is derived, adopting Analytical Hierarchical Process (AHP) for weighting the importance of the selection criteria and TOPSIS for ranking the available RATs. The proposed CRAT was implemented and validated in NS3 simulation environment. The performance of the proposed mechanism was tested using two different scenarios within a smart city environment, called a shopping mall and urban city scenarios. The obtained results showed that CRAT outperforms the conventional approach namely A2A4 of RAT selection in terms of the number of handovers, average network delay, throughput, and packet delivery ratio.
机译:第五代(5G)移动网络将通过支持在智慧城市环境中要求低延迟和高数据速率的新型创新应用程序,革新通信方式。为了满足这些应用程序的需求,超密集网络(UDN)被认为是5G中有希望的技术推动力之一。预计5G UDN部署将是异构且密集的,主要是通过提供来自不同无线接入技术(RAT)的小型小区(如微微小区和毫微微小区)来实现的。然而,各种研究报告说,致密化并不总是对网络性能有利。随着网络密度的增加,这将带来进一步的要求和确定用户在给定时间应连接哪个RAT的复杂性。因此,必须有一种有效的RAT选择机制,以在多个可用的无线接入技术中选择最佳的无线接入技术。本文提出了一种新的上下文感知无线电接入技术(CRAT)选择机制,该机制在选择合适的RAT进行服务时检查用户和网络的上下文。介绍了上下文感知RAT选择的简化概念模型。然后,推导了考虑用户和网络环境的CRAT数学模型,采用层次分析法(AHP)加权选择标准的重要性,并采用TOPSIS对可用RAT进行排名。所提出的CRAT已在NS3仿真环境中实施和验证。在智能城市环境中使用两种不同的场景(即购物中心和城市场景)对提出的机制的性能进行了测试。获得的结果表明,在切换次数,平均网络延迟,吞吐量和数据包传递率方面,CRAT优于传统的RAT选择方法A2A4。

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