Knowledge discovery of port scans from darknet

S. Lagraa, J. François
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引用次数: 26

Abstract

Port scanning is widely used in Internet prior for attacks in order to identify accessible and potentially vulnerable hosts. In this work, we propose an approach that allows to discover port scanning behavior patterns and group properties of port scans. This approach is based on graph modelling and graph mining. It provides to security analysts relevant information of what services are jointly targeted, and the relationship of the scanned ports. This is helpful to assess the skills and strategy of the attacker. We applied our method to data collected from a large darknet data, i.e. a full /20 network where no machines or services are or have been hosted to study scanning activities.
暗网端口扫描的知识发现
端口扫描是一种广泛应用于互联网攻击前检测的方法,用于识别可访问和可能易受攻击的主机。在这项工作中,我们提出了一种允许发现端口扫描行为模式和端口扫描组属性的方法。该方法基于图建模和图挖掘。它向安全分析人员提供了哪些服务是联合目标的相关信息,以及扫描端口之间的关系。这有助于评估攻击者的技能和策略。我们将我们的方法应用于从大型暗网数据收集的数据,即一个完整的/20网络,其中没有机器或服务被托管或已经托管来研究扫描活动。
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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