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Online detection and analysis of inter-domain routing instabilities .

机译:域间路由不稳定性的在线检测和分析。

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摘要

Border Gateway Protocol (BGP) is the default inter domain routing protocol. It has been designed to be scalable, so as to cope with the rapidly growing Internet. However, the policy based nature of BGP causes it to have poor isolation capabilities and any localized instability caused by a failure event may be propagated globally. As a result, the impact of different types of catastrophic events like worm attacks, power outages, accidental cable or link failures, etc. on connectivity in the Internet becomes much more severe and longer lasting. Thus, maintaining the stability of BGP is critical for preserving connectivity, thereby ensuring the delivery of data packets. Our approach to solving this problem is to detect the occurrence of BGP instabilities and to prevent their propagation. The detection algorithm proposed here, performs a statistical analysis of features extracted from BGP update message data to flag the onset of an instability. We perform sequential change detection on the feature time series using a Generalized Likelihood Ratio (GLR) based hypothesis test. In order to make the detection more robust, we also exploit the temporal correlation between changes detected across features and across peers. After the detection, we propose techniques to analyze the update message contents to identify the location of the root cause event. This information can then be used to design BGP policy rules that can help to prevent the instability propagation. Our system is designed to function online and can be deployed easily on any BGP router. We evaluate our system using real BGP data from periods of a number of failure events and SSFNet simulations. We show that it is efficient in detecting instabilities with minimum delay and very low false detection rates.
机译:边界网关协议(BGP)是默认的域间路由协议。它被设计为可扩展的,以应对快速增长的Internet。但是,BGP的基于策略的性质导致其隔离能力较差,并且由故障事件引起的任何局部不稳定性可能会在全球范围内传播。结果,蠕虫攻击,断电,电缆或链路意外故障等不同类型的灾难性事件对Internet连接的影响变得更加严重,持续时间更长。因此,维护BGP的稳定性对于保持连接性至关重要,从而确保了数据包的传递。我们解决此问题的方法是检测BGP不稳定性的发生并防止其传播。本文提出的检测算法对从BGP更新消息数据中提取的特征进行统计分析,以标记不稳定的开始。我们使用基于广义似然比(GLR)的假设检验对特征时间序列进行顺序更改检测。为了使检测更加可靠,我们还利用跨特征和跨同位体检测到的变化之间的时间相关性。在检测之后,我们提出了分析更新消息内容以识别根本原因事件的位置的技术。然后,可以使用此信息来设计BGP策略规则,以帮助防止不稳定性传播。我们的系统设计为可以在线运行,并且可以轻松地部署在任何BGP路由器上。我们使用来自多个故障事件周期的真实BGP数据和SSFNet模拟来评估我们的系统。我们表明,它可以以最小的延迟和非常低的错误检测率来检测不稳定性。

著录项

  • 作者

    Deshpande, Shivani.;

  • 作者单位

    Rensselaer Polytechnic Institute.;

  • 授予单位 Rensselaer Polytechnic Institute.;
  • 学科 Engineering Electronics and Electrical.; Computer Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 159 p.
  • 总页数 159
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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