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Improving end-to-end reliable transport using parallel transmission control protocol sessions.

机译:使用并行传输控制协议会话来改善端到端的可靠传输。

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摘要

Achieving acceptable levels of TCP performance on high speed wide area networks with large bandwidth delay products is very difficult. Poor performance is caused by long path round trip times and non-congestive packet losses that disrupt the mechanisms used by TCP to discover available network capacity. Distributed scientific, data intensive, and high performance computing applications that require timely movement of large amounts of data over are severely hampered by the ineffectiveness of TCP. To solve performance problems, applications are increasingly relying on aggressive network protocols that can substantially improve throughput, but do so at the expense of unfairly stealing bandwidth from other applications. It is not clear that these aggressive protocols can cooperate with existing network protocols to prevent excessive network congestion or congestion collapse. This dissertation describes a new approach based on parallel TCP streams that effectively utilizes available network bandwidth, but does not unfairly appropriate bandwidth from other applications when the network is fully utilized. The approach, Combined Parallel TCP, couples one standard TCP stream with several TCP streams for which congestion avoidance has been modified to increase the number of returning acknowledgement packets required to increase the TCP congestion window. This modification exploits a characteristic of congestion avoidance in which short round trip time (RTT) TCP streams dominate long RTT TCP streams in the competition for available network bandwidth. The research findings show that Combined Parallel TCP can effectively utilize unused network bandwidth, yet prioritize fair sharing of bandwidth over effectiveness when in competition with other TCP streams. This dissertation also describes a weighted round robin packet scheduler for parallel TCP that substantially reduces the memory necessary to buffer out of sequence packets; retains the raw throughput gains of parallel TCP; and provides better goodput stability than the current unweighted round robin scheduler in use by GridFTP. Scientific, data intensive, and high performance computing applications that adopt Combined Parallel TCP and the weighted round robin scheduler described in this dissertation can effectively make use of unused network bandwidth, yet retain the critical TCP friendly and fairness characteristics necessary to fairly share the network and prevent congestion collapse.
机译:在具有大带宽延迟产品的高速广域网上,要达到可接受的TCP性能水平是非常困难的。较差的性能是由较长的路径往返时间和无拥塞的数据包丢失所引起的,这些丢失会破坏TCP用于发现可用网络容量的机制。 TCP的无效性严重阻碍了需要及时移动大量数据的分布式科学,数据密集型和高性能计算应用程序。为了解决性能问题,应用程序越来越依赖积极的网络协议,这些协议可以显着提高吞吐量,但是这样做的代价是从其他应用程序中不公平地窃取带宽。尚不清楚这些激进协议是否可以与现有网络协议配合使用以防止过度的网络拥塞或拥塞崩溃。本文介绍了一种基于并行TCP流的新方​​法,该方法有效地利用了可用的网络带宽,但在网络被充分利用时,不会不公平地从其他应用程序中获得适当的带宽。组合并行TCP方法将一个标准T​​CP流与几个TCP流耦合在一起,已对其拥塞避免进行了修改,以增加增加TCP拥塞窗口所需的返回确认数据包数量。此修改利用了拥塞避免的特性,其中在可竞争的网络带宽竞争中,短往返时间(RTT)TCP流在长RTT TCP流中占主导地位。研究结果表明,组合并行TCP可以有效利用未使用的网络带宽,但是在与其他TCP流竞争时优先考虑带宽的公平共享而不是有效性。本文还描述了一种用于并行TCP的加权循环分组调度器,该调度器大大减少了缓冲失序分组所需的内存。保留并行TCP的原始吞吐量收益;与GridFTP使用的当前非加权循环调度程序相比,它提供了更好的吞吐量稳定性。采用本文所述的组合并行TCP和加权轮循调度程序的科学,数据密集型和高性能计算应用程序可以有效利用未使用的网络带宽,但仍保留公平共享网络和共享所需的关键TCP友好性和公平性。防止拥塞崩溃。

著录项

  • 作者

    Hacker, Thomas J.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 166 p.
  • 总页数 166
  • 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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