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首页> 外文期刊>Wireless Communications, IEEE Transactions on >Cross-Layer Performance of Channel Scheduling Mechanisms in Small-Cell Networks With Non-Line-of-Sight Wireless Backhaul Links
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Cross-Layer Performance of Channel Scheduling Mechanisms in Small-Cell Networks With Non-Line-of-Sight Wireless Backhaul Links

机译:具有非视线无线回程链路的小型蜂窝网络中信道调度机制的跨层性能

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摘要

Small-cell networks (SCNs) have emerged as a potential solution to the rapidly increasing demand for high-data-rate services over wireless networks. The small-cell access nodes (SANs) provide service to users through the access link and can be connected to the core/global network, preferably, via a wireless backhaul link. In this paper, we develop a queuing analytical model that considers the channel scheduling mechanisms in both links of SCNs, the time-varying nature of the channels, bursty packet arrivals, and the network topology e.g., the number of SANs and the coverage of the small cells. For the access link, we consider the so-called max rate/opportunistic channel scheduling mechanism, while for the backhaul link, we consider three different channel scheduling mechanisms, namely, fixed channel scheduling, round-robin channel scheduling, and access-link-dependent channel scheduling. Our developed analytical model is useful for gauging various data-link-layer performance measures, such as packet loss probability and average queuing delay of the packets, for the channel scheduling mechanisms under consideration. Presented numerical examples show that the choice of channel scheduling mechanism in the backhaul link is not unique and it depends on the operating scenario and required quality-of-service (QoS) parameters. The developed queuing model can also facilitate cross-layer design to meet the required QoS parameters. Presented simulation results validate the accuracy of the developed model.
机译:小蜂窝网络(SCN)已成为对无线网络对高数据速率服务的快速增长需求的潜在解决方案。小型蜂窝接入节点(SAN)通过接入链路为用户提供服务,并且可以连接到核心/全球网络,最好是通过无线回程链路。在本文中,我们开发了一种排队分析模型,该模型考虑了SCN的两个链路中的信道调度机制,信道的时变性质,突发数据包到达以及网络拓扑(例如,SAN的数量和网络的覆盖范围)小细胞。对于接入链路,我们考虑所谓的最大速率/机会信道调度机制,而对于回程链路,我们考虑三种不同的信道调度机制,即固定信道调度,轮询信道调度和接入链路-依赖通道调度。我们开发的分析模型可用于衡量各种数据链路层性能指标,例如所考虑的信道调度机制,例如数据包丢失概率和数据包的平均排队延迟。提出的数值示例表明,回程链路中信道调度机制的选择不是唯一的,并且取决于操作方案和所需的服务质量(QoS)参数。开发的排队模型还可以促进跨层设计,以满足所需的QoS参数。提出的仿真结果验证了开发模型的准确性。

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