PeerShark: Detecting Peer-to-Peer Botnets by Tracking Conversations

Pratik Narang, S. Ray, C. Hota, V. Venkatakrishnan
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引用次数: 61

Abstract

The decentralized nature of Peer-to-Peer (P2P) botnets makes them difficult to detect. Their distributed nature also exhibits resilience against take-down attempts. Moreover, smarter bots are stealthy in their communication patterns, and elude the standard discovery techniques which look for anomalous network or communication behavior. In this paper, we propose PeerShark, a novel methodology to detect P2P botnet traffic and differentiate it from benign P2P traffic in a network. Instead of the traditional 5-tuple 'flow-based' detection approach, we use a 2-tuple 'conversation-based' approach which is port-oblivious, protocol-oblivious and does not require Deep Packet Inspection. PeerShark could also classify different P2P applications with an accuracy of more than 95%.
PeerShark:通过跟踪对话检测点对点僵尸网络
点对点(P2P)僵尸网络的分散性使得它们很难被检测到。它们的分布式特性也显示出了抵御破坏企图的弹性。此外,智能机器人在其通信模式中是隐形的,并且避开了寻找异常网络或通信行为的标准发现技术。在本文中,我们提出了PeerShark,一种新的方法来检测P2P僵尸网络流量并将其与网络中的良性P2P流量区分开来。与传统的5元组“基于流”的检测方法不同,我们使用了2元组“基于会话”的方法,这种方法是端口无关的,协议无关的,不需要深度包检测。PeerShark还可以对不同的P2P应用程序进行分类,准确率超过95%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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