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Efficient Blacklisting and Pollution-Level Estimation in P2P File-Sharing Systems

机译:P2P文件共享系统中的有效黑名单和污染级别估算

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摘要

P2P file-sharing systems are susceptible to pollution attacks, whereby corrupted copies of content are aggressively introduced into the system. Recent research indicates that pollution is extensive in several file sharing systems. In this paper we propose an efficient measurement methodology for identifying the sources of pollution and estimating the levels of polluted content. The methodology can be used to efficiently blacklist polluters, evaluate the success of a pollution campaign, to reduce wasted bandwidth due to the transmission of polluted content, and to remove the noise from content measurement data. The proposed methodology is efficient in that it does not involve the downloading and analysis of binary content, which would be expensive in bandwidth and in computation/human resources. The methodology is based on harvesting metadata from the file sharing system and then processing off-line the harvested meta-data. We apply the technique to the FastTrack/Kazaa file-sharing network. Analyzing the false positives and false negatives, we conclude that the methodology is efficient and accurate.
机译:P2P文件共享系统容易受到污染攻击,从而将损坏的内容副本主动引入到系统中。最近的研究表明,污染在几个文件共享系统中是广泛的。在本文中,我们提出了一种有效的测量方法,可用于识别污染源和估算污染含量。该方法可用于有效地将污染者列入黑名单,评估污染活动的成功,减少由于污染内容的传输而造成的浪费带宽以及从内容测量数据中消除噪声。所提出的方法是有效的,因为它不涉及二进制内容的下载和分析,二进制内容的下载和分析在带宽和计算/人力资源上都是昂贵的。该方法基于从文件共享系统中收集元数据,然后离线处理所收集的元数据。我们将该技术应用于FastTrack / Kazaa文件共享网络。通过分析误报和误报,我们得出结论,该方法是有效且准确的。

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