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Analysis of Rogue Anti-Virus Campaigns Using Hidden Structures in k-Partite Graphs

机译:利用K-Pareite图中隐藏结构的流氓防病毒运动分析

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Driven by the potential economic profits, cyber-criminals are on the rise and use the Web to exploit unsuspecting users. Indeed, a real underground black market with thousands of collaborating organizations and individuals has developed, which brings together malicious users who trade exploits, malware, virtual assets, stolen credentials, and more. Among the various malicious activities of cyber-criminals, rogue security software campaigns have evolved into one of the most lucrative criminal operations on the Internet. In this paper, we present a novel method to analyze rogue security software campaigns, by studying a number of different features that are related to their operation. Contrary to existing data mining techniques for multivariate data, which are mostly based on the definition of appropriate proximity measures on a per-feature basis and data fusion techniques to combine per-feature mining results, we take advantage of the structural properties of the k-partite graph formed by considering the natural interconnections between objects of different types. We show that the proposed method is straightforward, fast and scalable. The results of the analysis of rogue security software campaigns are further assessed by a visual analysis tool and their accuracy is documented.
机译:受到潜在的经济利润,网络犯罪分子正在崛起,并利用网络利用毫无戒心的用户。实际上,已经开发了一个拥有数千个合作组织和个人的真正的地下黑市场,它汇集了贸易利用,恶意软件,虚拟资产,被盗凭证等的恶意用户。在网络 - 犯罪分子的各种恶意活动中,流氓安全软件运动已经发展成为互联网上最有利可图的刑事运营之一。在本文中,我们通过研究与其操作相关的许多不同功能来提出一种分析流氓安全软件运动的新方法。与现有数据挖掘技术相反,多变量数据主要基于每特定基础和数据融合技术的适当接近措施的定义,以结合每个特征采矿结果,我们利用了K-的结构特性通过考虑不同类型对象之间的自然互连来形成的伴侣图。我们表明,所提出的方法是简单的,快速和可扩展的。通过视觉分析工具进一步评估了流氓安全软件运动分析的结果,并记录了他们的准确性。

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