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Identifying the Cyber Attack Origin with Partial Observation: A Linear Regression Based Approach

机译:用部分观察识别网络攻击原点:基于线性回归的方法

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Cyber systems have become ubiquitous and indispensable in our daily life, and the extent of our dependence on them has increasingly grown in all fields including: education, business, industry and government. Those systems make intensive use of data and information and are therefore exposed to more potential cyber attacks. Thereby, the need for reliable approaches to protect them has increased. One of the key elements for guaranteeing the security of cyber systems is to identify the origin (the source) of the attack. In this paper, we describe a new approach to estimate both the source and the start time of a virus outbreak in complex networks (which include cyber systems) using partial information about the diffusion process, obtained through observing only a subset of nodes. Our approach uses a linear regression method on the partial obtained data, based on the fact that there is a linear correlation observed between the relative infection time of a node and its effective distance from the source. The experimental results showed that our approach is able to give an estimation of the source and the start time in, respectively, few hops from the actual source, and few time-units from the real start time.
机译:在我们的日常生活中,网络系统已经变得无处不在,并且我们对他们的依赖程度越来越多地在所有领域种植,包括:教育,商业,工业和政府。这些系统能够密集使用数据和信息,因此暴露于更多潜在的网络攻击。因此,需要可靠的保护它们的方法增加了。用于保证网络系统安全性的关键要素之一是识别攻击的原点(源)。在本文中,我们描述了一种新方法来估计复杂网络(包括网络系统)的病毒爆发的源和开始时间,通过观察仅观察节点的子集来获得的偏离过程。基于节点的相对感染时间与其有效距离之间存在线性相关性,我们的方法在部分获得的数据上使用线性回归方法在部分获得的数据上使用线性回归方法。实验结果表明,我们的方法能够分别估计来自实际源的源头和起始时间,并且从实际开始时间几个时间单位。

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