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首页> 外文期刊>Vehicular Technology, IEEE Transactions on >A Cross-Layer Framework for Overhead Reduction, Traffic Scheduling, and Burst Allocation in IEEE 802.16 OFDMA Networks
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A Cross-Layer Framework for Overhead Reduction, Traffic Scheduling, and Burst Allocation in IEEE 802.16 OFDMA Networks

机译:IEEE 802.16 OFDMA网络中用于开销减少,流量调度和突发分配的跨层框架

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摘要

IEEE 802.16 orthogonal frequency-division multiple access (OFDMA) downlink subframes have a special 2-D channel-time structure. Allocation resources from such a 2-D structure incur extra control overheads that hurt network performance. Existing solutions try to improve network performance by designing either the scheduler in the medium access control layer or the burst allocator in the physical layer, but the efficiency of overhead reduction is limited. In this paper, we point out the necessity of “codesigning” both the scheduler and the burst allocator to efficiently reduce overheads and improve network performance. Under the partial-usage-of-subcarriers model, we propose a cross-layer framework that covers overhead reduction, real-time and non-real-time traffic scheduling, and burst allocation. The framework includes a two-tier priority-based scheduler and a bucket-based burst allocator, which is more complete and efficient than prior studies. Both the scheduler and the burst allocator are tightly coupled together to solve the problem of arranging resources to data traffic. Given available space and bucket design from the burst allocator, the scheduler can well utilize the frame resource, reduce real-time traffic delays, and maintain fairness. On the other hand, with priority knowledge and resource assignment from the scheduler, the burst allocator can efficiently arrange downlink bursts to satisfy traffic requirements with low complexity. Through analysis, the cross-layer framework is validated to give an upper bound to overheads and achieve high network performance. Extensive simulation results verify that the cross-layer framework significantly increases network throughput, maintains long-term fairness, alleviates real-time traffic delays, and enhances frame utilization.
机译:IEEE 802.16正交频分多址(OFDMA)下行链路子帧具有特殊的二维信道时间结构。这种二维结构的分配资源会产生额外的控制开销,从而影响网络性能。现有解决方案试图通过在媒体访问控制层中设计调度程序或在物理层中设计突发分配器来提高网络性能,但是降低开销的效率受到限制。在本文中,我们指出了对“调度器”和“突发分配器”进行“共同设计”的必要性,以有效减少开销并提高网络性能。在部分使用子载波模型下,我们提出了一个跨层框架,该框架涵盖了开销减少,实时和非实时流量调度以及突发分配。该框架包括一个基于两层的基于优先级的调度程序和一个基于桶的突发分配器,它比以前的研究更加完整和有效。调度程序和突发分配器都紧密耦合在一起,以解决将资源分配给数据流量的问题。给定突发分配器的可用空间和存储桶设计,调度程序可以很好地利用帧资源,减少实时流量延迟,并保持公平性。另一方面,利用来自调度器的优先级知识和资源分配,突发分配器可以有效地布置下行链路突发以满足低复杂度的业务需求。通过分析,跨层框架经过验证,可以为开销提供上限并实现较高的网络性能。大量的仿真结果证明,跨层框架可显着提高网络吞吐量,保持长期公平性,减轻实时流量延迟并提高帧利用率。

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