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Efficient Communication and Localization for Underwater Acoustic Networks.

机译:水下声学网络的高效通信和本地化。

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摘要

As an emerging area, underwater acoustic networks have attracted rapidly growing interests in last several years. On the one hand, underwater networks enable a wide range of aquatic applications, such as oceanographic data collection, pollution monitoring, offshore exploration, disaster prevention, and tactical surveillance applications. On the other hand, the adverse underwater environments pose grand challenges for efficient communication and networking.;In underwater acoustic networks, nodes are usually powered by battery, which is hard, if not impossible, to be replaced in practice. For long-term applications such as environment monitoring, the node is expected to work continuously for a long time, from several days to several years. Thus, energy efficiency becomes one of the most important design considerations. In addition, underwater acoustic channels feature long propagation delays and low available bandwidth. Communication efficiency is also of paramount importance to a practical underwater network. In this dissertation work, we tackle the efficiency problem for underwater acoustic networks from three important aspects: Medium Access Control (MAC), reliable data transfer and distributed localization. Specifically, three research thrusts are included in this dissertation work: 1) Efficient MAC protocols; 2) Efficient reliable data transfer schemes; 3) Efficient distributed localization protocols.;For the efficient MAC protocols, we take a novel multi-channel approach to combat the severe underwater environment. We model and analyze two generalized multichannel MAC protocols: multi-channel access with Aloha and multi-channel access with RTS/CTS on a dedicated control channel. Based on our analysis, for the first time, we identify the triple hidden terminal problem which is special to the multichannel underwater acoustic network. We propose a new Cooperative Underwater multi-channel MAC protocol (CUMAC), which can effectively solve the triple hidden terminal problem and improve the system efficiency.;Secondly, delay critical applications, such as submarine detection, have strict requirements on time delay and end-to-end reliability. Conventional methods such as retransmission-upon-failure cannot satisfy both requirements effectively. We propose a novel efficient end-to-end transmission scheme, called Multi-path Power-control Transmission (MPT). MPT can guarantee certain end-to-end packet reliability while achieving a good balance between the overall energy efficiency and the packet delay. Since no retransmission is allowed in MPT, it is efficient in terms of both energy and bandwidth. Simulation results show that MPT can greatly improve the system efficiency.;Thirdly, we investigate distributed localization protocols for underwater acoustic networks. Since localization service is indispensable for many applications and networking functions, it affects the network performance greatly. By investigating the temporal and spatial correlations of the mobile underwater objects, we propose a new scalable hierarchical localization scheme, called Scalable Localization with Mobility Prediction (SLMP). SLMP is the first protocol which utilizes the mobility pattern of underwater objects and employs an advanced mobility prediction algorithm. Simulation results show that SLMP can greatly improve the localization accuracy with much less communication costs.
机译:作为新兴领域,近几年来,水下声学网络吸引了快速增长的兴趣。一方面,水下网络支持广泛的水生应用,例如海洋数据收集,污染监测,海上勘探,防灾和战术监视应用。另一方面,不利的水下环境对有效的通信和联网提出了巨大的挑战。在水下声网络中,节点通常由电池供电,实际上,即使不是不可能的,也很难更换。对于诸如环境监控之类的长期应用程序,该节点有望在几天到几年的时间内长时间连续工作。因此,能源效率成为最重要的设计考虑因素之一。另外,水下声信道具有长的传播延迟和低的可用带宽。通信效率对于实际的水下网络也至关重要。在这篇论文中,我们从三个重要方面解决了水下声网络的效率问题:媒体访问控制(MAC),可靠的数据传输和分布式本地化。具体来说,本文的研究重点包括三个方面:1)高效的MAC协议; 2)高效可靠的数据传输方案; 3)高效的分布式本地协议。;对于高效的MAC协议,我们采用新颖的多通道方法来应对严峻的水下环境。我们对两种通用的多通道MAC协议进行建模和分析:在专用控制通道上使用Aloha进行多通道访问和使用RTS / CTS进行多通道访问。根据我们的分析,我们首次确定了多通道水下声网络特有的三重隐藏终端问题。我们提出了一种新的水下协作多信道MAC协议(CUMAC),可以有效解决三重隐藏终端问题并提高系统效率;其次,潜艇检测等延迟关键应用对时延和末尾有严格的要求到端的可靠性。诸如失败时重传的常规方法不能有效地满足这两个要求。我们提出了一种新颖的高效端到端传输方案,称为多径功率控制传输(MPT)。 MPT可以保证一定的端到端数据包可靠性,同时在总体能效和数据包延迟之间实现良好的平衡。由于MPT中不允许重传,因此在能量和带宽方面都是高效的。仿真结果表明,MPT可以大大提高系统效率。第三,研究水下声网络的分布式定位协议。由于本地化服务对于许多应用程序和网络功能是必不可少的,因此它会极大地影响网络性能。通过研究水下移动物体的时间和空间相关性,我们提出了一种新的可分级分层本地化方案,称为带有移动性预测的可扩展本地化(SLMP)。 SLMP是第一个利用水下物体的移动性模式并采用高级移动性预测算法的协议。仿真结果表明,SLMP可以大大降低定位精度,降低通信成本。

著录项

  • 作者

    Zhou, Zhong.;

  • 作者单位

    University of Connecticut.;

  • 授予单位 University of Connecticut.;
  • 学科 Engineering Computer.;Engineering Electronics and Electrical.;Computer Science.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 196 p.
  • 总页数 196
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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