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Design, Implementation and Characterization of a Cooperative Communications System.

机译:协作通信系统的设计,实现和特性。

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摘要

Cooperative communications is a class of techniques which seek to improve reliability and throughput in wireless systems by pooling the resources of distributed nodes. While cooperation can occur at different network layers and time scales, physical layer cooperation at symbol time scales offers the largest benefit. However, symbol level cooperation poses significant implementation challenges, especially in the context of a network of distributed nodes.;We first present the design and implementation of a complete cooperative physical layer transceiver, built from scratch on the Wireless Open-Access Research Platform (WARP). In our implementation fully distributed nodes employ physical layer cooperation at symbol time scales without requiring a central synchronization source. Our design supports per-packet selection of non-cooperative or cooperative communication, with cooperative links utilizing either amplify-and-forward or decode-and-forward relaying. A single design implements transmission, reception and relaying, allowing each node to assume the role of source, destination or relay per packet.;We also present experimental methodologies for evaluating our design and extensive experimental results of our transceiver's performance under a variety of topologies and propagation conditions. Our methods are designed to test both overall performance and to isolate and understand the underlying causes of performance limitations. Our results clearly demonstrate significant performance gains (more than 50x improvement in PER in some topologies) provided by physical layer cooperation even when subject to the constraints of a real-time implementation.;As with all our work on WARP, our transceiver design and experimental framework are available via the open-source WARP repository for use by other wireless researchers.
机译:协作通信是一类技术,旨在通过合并分布式节点的资源来提高无线系统的可靠性和吞吐量。尽管合作可以发生在不同的网络层和时间范围内,但符号时间尺度上的物理层合作提供了最大的好处。但是,符号级协作带来了巨大的实现挑战,尤其是在分布式节点网络的情况下。我们首先介绍在无线开放访问研究平台(WARP)上从头开始构建的完整协作物理层收发器的设计和实现。 )。在我们的实现中,完全分布式的节点在符号时间尺度上采用物理层协作,而无需中央同步源。我们的设计支持按分组选择非合作或合作通信,并利用放大转发或解码转发中继进行合作链接。单一设计实现了传输,接收和中继,允许每个节点承担每个数据包的源,目的地或中继的角色。我们还提供了用于评估我们的设计的实验方法,以及在各种拓扑结构下收发器性能的广泛实验结果。传播条件。我们的方法旨在测试整体性能,并隔离和理解性能限制的根本原因。我们的结果清楚地表明,即使受到实时实施的限制,物理层合作也可以显着提高性能(在某些拓扑结构中,PER可以提高50倍以上);与我们在WARP上的所有工作,收发器设计和实验一样可通过开源WARP存储库获得该框架,以供其他无线研究人员使用。

著录项

  • 作者

    Murphy, Patrick O.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Engineering Computer.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 208 p.
  • 总页数 208
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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