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Priority-Based Massive Random Access of M2M Communications in LTE Networks: Throughput Analysis and optimization

机译:LTE网络中基于优先级的M2M通信大规模随机接入:吞吐量分析和优化

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The machine-to-machine (M2M) communication is a technology that contains massive number of machine type devices (MTDs) and different kinds of applications, with which it is imperative to improve the access efficiency and provide priority-based service. To address this issue, a priority-based analytical framework is proposed in this paper to optimize the network throughput under diverse throughput requirements for M2M communications. Specifically, MTDs are divided into multiple groups according to their applications. The access behavior of each MTD is characterized by a double-queue model. Based on this model, the network throughput is derived as an explicit function of the number of groups and the parameters of each group including the number of MTDs, the aggregate packet arrival rate, the access class barring (ACB) factor and the uniform backoff (UB) window size. To satisfy the diverse service requirements of different applications, a constraint is imposed to ensure a target throughput ratio among groups. The maximum network throughput is then derived under the throughput ratio constraint. Simulation results verify that with the optimal tuning of backoff parameters, the network can achieve the optimal throughput and meet the diverse throughput requirements between groups at the same time irrespective of the number of MTDs in the network.
机译:机器对机器(M2M)通信是一种包含大量机器类型设备(MTD)和不同类型应用程序的技术,必须提高访问效率并提供基于优先级的服务。为了解决这个问题,本文提出了一种基于优先级的分析框架,以在M2M通信的各种吞吐量需求下优化网络吞吐量。具体而言,MTD根据其应用分为多个组。每个MTD的访问行为都以双队列模型为特征。根据此模型,得出网络吞吐量是组数量和每个组参数(包括MTD数量,总数据包到达率,访问等级限制(ACB)因子和统一退避)的显式函数( UB)窗口大小。为了满足不同应用程序的多样化服务需求,施加了约束以确保组之间的目标吞吐率。然后,在吞吐率约束条件下得出最大网络吞吐率。仿真结果证明,通过优化调整退避参数,网络可以实现最佳吞吐量,并同时满足组之间不同的吞吐量要求,而与网络中MTD的数量无关。

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