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Multiterminal relay networks: Performance bounds, protocol design, and channel coding strategies.

机译:多终端中继网络:性能范围,协议设计和信道编码策略。

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摘要

The combination of silicon scaling and energy-efficient multi-terminal packet radio technology will soon allow low power devices to be embedded virtually everywhere, enabling a wide range of revolutionary applications that will radically change the way that people and devices interact with their environments. Given current trends in the advancement of technology, to engineer useful embedded wireless networks with long lifetimes and massive scale required for many applications, new analytical tools and approaches to protocol design that reflect recent perspectives on wireless networking are necessary.; The major objective of this dissertation is to characterize the fundamental performance bounds and devise an integrated approach to the design, analysis, and implementation of energy efficient cross-layer protocols for embedded networks under realistic constraints. The focus of the study is on a general class of embedded wireless networks that are decomposed into clusters of low cost radio devices including a source, a destination, and one or more relays. The message propagation mechanism of each cluster is modelled as a rate constrained relay network where signaling is over a random phase block interference channel, and transmissions from the various nodes are noncoherent. Numerical analysis indicates that even in relay networks under small rate constraints, significant energy savings are achievable by implementing distributed spatial diversity via adaptive or nonadaptive relaying. For relay networks under large rate constraints, we propose energy-efficient relaying protocols that jointly perform cooperative diversity, hybrid-ARQ retransmission, and routing, first for time-invariant networks to exploit a better energy-throughput tradeoff over multihop or direct transmission, and then for time-varying networks to fully implement the time and spatial diversity with energy constrained devices. Unlike multihop, where a network-layer protocol is needed to explicitly select a message route through the network a priori, relaying will adaptively find the best 'path', thus bypass relays that are continually in an outage, thus power/range control becomes less important in relay networks. On the other hand, as relaying requires many more devices than multihop to listen to each broadcast, its energy efficiency benefit begins to diminish due to non-negligible energy cost to receive a transmission. To avoid excessive receiver energy dissipation, the coverage area and cluster size of relaying need to be carefully defined. Finally, we propose simple coding strategies inspired by the turbo principle is proposed to approach the information theoretic limits of the constrained relay networks under block fading.
机译:硅缩放和高能效多终端分组无线技术的结合将很快使低功率设备几乎可以嵌入到任何地方,从而实现广泛的革命性应用,从根本上改变人与设备与环境交互的方式。鉴于当前技术进步的趋势,要设计出使用寿命长且对许多应用程序要求大规模的有用的嵌入式无线网络,必须采用能够反映无线网络最新观点的新的分析工具和协议设计方法。本文的主要目的是描述基本性能界限,并设计一种集成方法来设计,分析和实现在实际约束下嵌入式网络的节能跨层协议。该研究的重点是将一类普通的嵌入式无线网络分解为低成本的无线电设备集群,包括源,目的地和一个或多个中继。将每个群集的消息传播机制建模为速率受限的中继网络,其中信令在随机相位块干扰信道上,并且来自各个节点的传输是非相干的。数值分析表明,即使在速率限制较小的中继网络中,通过通过自适应或非自适应中继实现分布式空间分集,也可以显着节省能源。对于在大速率约束下的中继网络,我们提出了一种节能中继协议,该协议可共同执行协作分集,混合ARQ重传和路由,首先针对时不变网络,以在多跳或直接传输上更好地利用能量吞吐量进行权衡,以及然后,对于时变网络,可以使用能量受限的设备完全实现时间和空间分集。与多跳不同,在多跳中,需要网络层协议来先验地明确选择通过网络的消息路由,中继将自适应地找到最佳的“路径”,从而旁路不断中断的中继,从而减少功率/范围控制在中继网络中很重要。另一方面,由于中继需要比多跳更多的设备来收听每个广播,因此,由于接收传输的能源成本不可忽略,中继的能效优势开始减弱。为了避免过多的接收机能量耗散,需要仔细定义中继的覆盖区域和群集大小。最后,我们提出了一种受turbo原理启发的简单编码策略,以解决块衰落下受限中继网络的信息理论极限。

著录项

  • 作者

    Zhao, Bin.;

  • 作者单位

    West Virginia University.;

  • 授予单位 West Virginia University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 133 p.
  • 总页数 133
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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