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Control of transport dynamics in overlay networks.

机译:控制覆盖网络中的传输动态。

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摘要

Transport control is an important factor in the performance of Internet protocols, particularly in the next generation network applications involving computational steering, interactive visualization, instrument control, and transfer of large data sets. The widely deployed Transport Control Protocol is inadequate for these tasks due to its performance drawbacks. The purpose of this dissertation is to conduct a rigorous analytical study on the design and performance of transport protocols, and systematically develop a new class of protocols to overcome the limitations of current methods.; Various sources of randomness exist in network performance measurements due to the stochastic nature of network traffic. We propose a new class of transport protocols that explicitly accounts for the randomness based on dynamic stochastic approximation methods. These protocols use congestion window and idle time to dynamically control the source rate to achieve transport objectives. We conduct statistical analyses to determine the main effects of these two control parameters and their interaction effects. The application of stochastic approximation methods enables us to show the analytical stability of the transport protocols and avoid pre-selecting the flow and congestion control parameters. These new protocols are successfully applied to transport control for both goodput stabilization and maximization. The experimental results show the superior performance compared to current methods particularly for Internet applications.; To effectively deploy these protocols over the Internet, we develop an overlay network, which resides at the application level to provide data transmission service using User Datagram Protocol. The overlay network, together with the new protocols based on User Datagram Protocol, provides an effective environment for implementing transport control using application-level modules. We also study problems in overlay networks such as path bandwidth estimation and multiple quickest path computation.; In wireless networks, most packet losses are caused by physical signal losses and do not necessarily indicate network congestion. Furthermore, the physical link connectivity in ad-hoc networks deployed in unstructured areas is unpredictable. We develop the Connectivity-Through-Time protocols that exploit the node movements to deliver data under dynamic connectivity. We integrate this protocol into overlay networks and present experimental results using network to support a team of mobile robots.
机译:传输控制是Internet协议性能的重要因素,尤其是在涉及计算控制,交互式可视化,仪器控制和大数据集传输的下一代网络应用中。由于其性能缺点,被广泛部署的传输控制协议不足以完成这些任务。本文的目的是对运输协议的设计和性能进行严格的分析研究,系统地开发出一类新的协议以克服当前方法的局限性。由于网络流量的随机性,网络性能测量中存在各种随机性源。我们提出了一类新的传输协议,该协议基于动态随机逼近方法显式说明了随机性。这些协议使用拥塞窗口和空闲时间来动态控制源速率,以实现传输目标。我们进行统计分析以确定这两个控制参数的主要作用及其相互作用。随机逼近方法的应用使我们能够显示运输协议的分析稳定性,并避免预先选择流量和拥塞控制参数。这些新协议已成功应用于传输控制,以实现吞吐量稳定和最大化。实验结果表明,与当前方法相比,特别是对于Internet应用而言,该方法具有优越的性能。为了在Internet上有效地部署这些协议,我们开发了一个覆盖网络,该网络位于应用程序级别,以使用用户数据报协议提供数据传输服务。覆盖网络与基于用户数据报协议的新协议一起,为使用应用程序级模块实施传输控制提供了有效的环境。我们还研究了覆盖网络中的问题,例如路径带宽估计和多个最快路径计算。在无线网络中,大多数数据包丢失是由物理信号丢失引起的,不一定表示网络拥塞。此外,部署在非结构化区域中的自组织网络中的物理链路连接是不可预测的。我们开发了连通时间协议,该协议利用节点移动来在动态连通性下传递数据。我们将此协议集成到覆盖网络中,并使用网络展示实验结果以支持一组移动机器人。

著录项

  • 作者

    Wu, Qishi.;

  • 作者单位

    Louisiana State University and Agricultural & Mechanical College.;

  • 授予单位 Louisiana State University and Agricultural & Mechanical College.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术、计算机技术;
  • 关键词

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