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Evolutionary 4G/5G Network Architecture Assisted Efficient Handover Signaling

机译:演进式4G / 5G网络架构辅助高效切换信令

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Future wireless networks are expected to be ultra-dense and heterogeneous not just in terms of the number and type of base stations but also in terms of the number of users and the application types they access. Such a network architecture will require mobility management mechanisms that adapt rapidly to these highly dynamic network characteristics. In particular, the optimality of the handover signaling within these future network architectures will be extremely critical given their density and heterogeneity. In this paper, the optimality is relevant for both the total amount of signaling created and the total delay per handover process. In this paper, we first present a novel and optimized message mapping and signaling mechanism for the handover preparation and failure phases. We also develop a novel handover failure aware preparation signaling methodology, which accounts for the possibility of a handover failure and grants additional enhancements to the handover preparation and failure signaling phases. Through the analytical framework provided in this paper, we conduct studies to quantify the performance gains promised by the proposed mechanisms. These studies cover myriad handover scenarios as identified by 3GPP and use the statistics from cellular network operators and vendors. We then develop the idea and analytical framework for network wide analysis, in which the network wide processing cost and network occupation time for various handover failure rates are computed. Finally, we propose an evolutionary network architecture that facilitates the proposed signaling mechanism as well as assists operators in maintaining a manageable capital expenditure. It combines the current day and 3GPP proposed 5G network architecture with the software-defined networking approach. As a result, we argue that the proposed mechanisms are viable and outperform the legacy handover signaling mechanisms in terms of latency incurred, total network occupation time, number of messages generated, and total bytes transferred.
机译:未来的无线网络不仅在基站的数量和类型方面,而且在用户数量和他们访问的应用程序类型方面,都将变得极为密集和异构。这样的网络体系结构将需要快速适应这些高度动态的网络特征的移动性管理机制。特别地,鉴于它们的密度和异构性,这些未来网络架构内的切换信令的最优性将极为关键。在本文中,最优性与创建的信令总量和每个切换过程的总延迟有关。在本文中,我们首先为切换准备和失败阶段提出了一种新颖且优化的消息映射和信令机制。我们还开发了一种新颖的切换失败感知准备信令方法,该方法解决了切换失败的可能性,并为切换准备和失败信令阶段提供了额外的增强。通过本文提供的分析框架,我们进行研究以量化拟议机制所承诺的性能收益。这些研究涵盖了3GPP识别的多种切换方案,并使用了来自蜂窝网络运营商和供应商的统计数据。然后,我们开发了用于网络范围分析的思想和分析框架,其中计算了各种切换失败率的网络范围处理成本和网络占用时间。最后,我们提出了一种演进的网络体系结构,该体系结构有助于提出的信令机制,并协助运营商维持可管理的资本支出。它结合了当今和3GPP提出的5G网络架构以及软件定义的联网方法。结果,我们认为所提出的机制是可行的,并且在产生的等待时间,总的网络占用时间,生成的消息数和传输的总字节数方面优于传统的切换信令机制。

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