多跳TDMA自组网中拓扑透明广播调度和MDS擦除编码的联合研究

Yi-Sheng Su
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引用次数: 2

摘要

本文研究了多跳时分多址(TDMA)自组织网络中具有服务质量(QoS)支持、拓扑透明广播调度(TTBS)的介质访问控制(MAC)协议。TTBS侧重于提供QoS,即每个节点可以同时成功地将相同的数据包传输到其通信范围内的所有其他节点(广播流量),而不会因网络拓扑变化而重新计算传输调度的开销。对于广播业务,由于应答的确认报文可能会发生冲突,因此不能采用MAC层确认来提供可靠的传输。为了确保所有预期的节点都能成功接收到广播数据包而不采用MAC层确认,TTBS是通过在一个帧期间在所有节点分配的插槽中传输相同的数据包来实现的。阿明费。《科技》,第52卷,第4期,第970页,2003年)。因此,每个节点每帧只能成功广播一个数据包,这在带宽使用和吞吐量方面效率很低。为了解决这个问题,本文介绍了使用最大距离可分离(MDS)擦除编码来提高TTBS的性能。通过分析,得出了获得最佳性能的最优参数的结果。数值计算结果表明,在大多数广播业务负载下,该方案的性能优于现有方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Joint topology-transparent broadcast scheduling and MDS erasure coding in multihop TDMA ad hoc networks
In this paper, we study medium-access-control (MAC) protocols with quality-of-service (QoS) support, topology-transparent broadcast scheduling (TTBS), in multihop time-division multiple-access (TDMA) ad hoc networks. TTBS focuses on the QoS provisioning that each node can successfully transfer the same packet to all the other nodes within its communication range simultaneously (broadcast traffic) without the overhead due to the re-computation of transmission schedules when the network topology changes. For broadcast traffic, the MAC layer acknowledgment cannot be applied to provide reliable transmission because the replied acknowledgment packets may suffer conflicts. In order to ensure that all the intended nodes successfully receive the broadcast packet without adopting the MAC layer acknowledgment, TTBS is achieved by transmitting the same packet in all of a nodepsilas assigned slots during a frame (IEEE Trans. Veh. TechnoL, Vol. 52, No. 4, p. 970, 2003). As a result, each node can successfully broadcast only one packet per frame, which is inefficient in terms of bandwidth usage and throughput. To address the problem, we introduce in this paper the use of maximum-distance-separable (MDS) erasure coding to improve the performance of TTBS. By analysis, results for the optimal parameters achieving the best performance are derived for the resulting TTBS. Compared numerical results show that the proposed scheme outperforms the existing one for most of broadcast traffic loads.
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