基于连接模式的互联网骨干流量分类启发式算法

Wolfgang John, S. Tafvelin
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引用次数: 58

摘要

本文根据网络应用,对互联网骨干网流量进行了传输层分类。分类是由一组启发于前两篇文章的启发式方法完成的,并且经过了改进,以便更好地反映粗略的、高度聚合的骨干环境。揭示了现有两种方法明显的误分类流,并提出了更新的启发式方法,排除了已发现的误报,但包括错过的P2P流。提出的一组启发式方法旨在为研究人员和网络运营商提供一种相对简单和快速的方法来深入了解其链接所携带的数据类型。一个完整的应用程序分类甚至可以提供短的“快照”跟踪,包括识别攻击和恶意流量。启发式的有用性最终在骨干流量的大型数据集上得到了展示,在最好的情况下,只有0.2%的数据未被分类。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Heuristics to Classify Internet Backbone Traffic based on Connection Patterns
In this paper Internet backbone traffic is classified on transport layer according to network applications. Classification is done by a set of heuristics inspired by two previous articles and refined in order to better reflect a rough and highly aggregated backbone environment. Obvious misclassified flows by the existing two approaches are revealed and updated heuristics are presented, excluding the revealed false positives, but including missed P2P streams. The proposed set of heuristics is intended to provide researchers and network operators with a relatively simple and fast method to get insight into the type of data carried by their links. A complete application classification can be provided even for short 'snapshot' traces, including identification of attack and malicious traffic. The usefulness of the heuristics is finally shown on a large dataset of backbone traffic, where in the best case only 0.2% of the data is left unclassified.
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