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6Tree: Efficient dynamic discovery of active addresses in the IPv6 address space

机译:6Tree:高效动态发现IPv6地址空间中的活动地址

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摘要

Active IPv6 address data could support research and applications for the next generation of the Internet, but finding ways to gather such data through active scanning and deal with emerging large-scale alias is a challenge. In this paper, we propose 6Tree, which analyzes known active addresses as seeds to learn their distribution feature and offers suggested search directions for scanners. It comprehends IPv6 addresses as high-dimensional vectors and performs a divisive hierarchical clustering (DHC) on corresponding vectors of seeds to generate a data structure, named a space tree, that characterizes value variabilities in different dimensions. Moreover, it can dynamically adjust proper directions based on real-time scanning results and embed alias detection into the search for the first time. Compared with the state-of-the-art method 6Gen, 6Tree has a faster linear time complexity to finish million-scale data training at a minute level for supporting a timely application, as well as better robustness for maintaining address discovery performance in context variations, including uneven seed sampling and workload division. According to aliased prefixes collected from a nascent research, 6Tree discovered approximately 4.69 million dealiased active addresses based on 2.74 million seeds, including 1.67 million aliased addresses, by scanning 0.3 billion addresses in one experiment. Additionally, 99.5% of detected aliased addresses are in the gathered aliased prefixes, and some undiscovered aliased prefixes were also found. We design the visualization technique Iris to visualize the address distribution based on discovery results and offer a novel perspective on the IPv6 deployment. (C) 2019 Published by Elsevier B.V.
机译:Active IPv6地址数据可以支持下一代互联网的研究和应用程序,但发现通过主动扫描和处理新兴大规模别名来收集此类数据的方法是挑战。在本文中,我们提出了6段,这将已知的活动地址分析为种子以学习其分发特征,并为扫描仪提供建议的搜索方向。它将IPv6地址理解为高维向量,并在种子的相应向量上执行分割分层聚类(DHC),以生成命名为空间树的数据结构,其特征在于不同维度的值可变性。此外,它可以基于实时扫描结果动态调整正确的方向,并首次将别名检测嵌入到搜索中。与最先进的方法6Gen相比,6Tree具有更快的线性时间复杂性,以在微小的水平下完成百万级数据训练以支持及时应用,以及在上下文变化中维护地址发现性能的更好的稳健性,包括不均匀的种子采样和工作负载部门。根据从新生研究中收集的锯齿化前缀,通过扫描了一个实验中的0.3亿个地址,6Tree基于274万种种子,包括1944万种子,包括177万个锯齿地址,包括177万个锯齿地址。此外,99.5%的检测到的别名地址处于聚集的锯齿化前缀,也发现了一些未发现的锯齿化前缀。我们设计可视化技术虹膜以根据发现结果可视化地址分发,并在IPv6部署提供新颖的透视图。 (c)2019年由elestvier b.v发布。

著录项

  • 来源
    《Computer networks》 |2019年第may22期|31-46|共16页
  • 作者单位

    Natl Univ Def Technol Sch Comp Changsha 410073 Hunan Peoples R China;

    Natl Univ Def Technol Sch Comp Changsha 410073 Hunan Peoples R China|Changsha Univ Dept Elect Informat & Elect Engn Changsha 410022 Hunan Peoples R China;

    Changsha Univ Dept Comp Engn & Appl Math Changsha 410022 Hunan Peoples R China;

    Natl Univ Def Technol Sch Comp Changsha 410073 Hunan Peoples R China;

    Changsha Univ Dept Elect Informat & Elect Engn Changsha 410022 Hunan Peoples R China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    IPv6; Active address discovery; Alias detection; Visualization; Internet-wide scanning;

    机译:IPv6;主动地址发现;别名检测;可视化;互联网扫描;

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