rProfiler -- Assessing Insider Influence on Enterprise Assets

Manish Shukla, S. Lodha
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引用次数: 1

Abstract

Insider threat is a well-recognized problem in the cyber-security domain. There is good amount of research on detecting and predicting an insider attack. However, none of them addresses the influence of an insider over other individuals, and the spread of impact due to direct and indirect access to enterprise assets by having such influence. In this work, we propose a graph-based influence profiling solution called rProfiler that analyzes the data from multiple sources to determine the influence spread and calculate the probability of loss of data from an affected device using pertinent graph features. We also highlight multiple enterprise scenarios that may benefit from this work.
rProfiler——评估内部人对企业资产的影响
内部威胁是网络安全领域一个公认的问题。在检测和预测内部攻击方面有大量的研究。但是,它们都没有解决内部人员对其他个人的影响,以及通过这种影响直接和间接获得企业资产而产生的影响的扩散。在这项工作中,我们提出了一种基于图形的影响分析解决方案,称为rProfiler,该解决方案分析来自多个来源的数据,以确定影响范围,并使用相关的图形特征计算受影响设备的数据丢失概率。我们还强调了可能从这项工作中受益的多个企业场景。
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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