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A Markov Random Field Framework for Modeling Malware Propagation in Complex Communications Networks

机译:用于复杂通信网络中恶意软件传播建模的Markov随机场框架

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The proliferation of complex communication networks (CCNs) and their importance for maintaining social coherency nowadays have urgently elevated the need for protecting networking infrastructures from malicious software attacks. In this paper, we propose a Markov Random Field (MRF) based spatio-stochastic framework for modeling the macroscopic behavior of a CCN under random attack, where malicious threats propagate through direct interactions and follow the Susceptible-Infected-Susceptible infection paradigm. We exploit the MRF framework for analytically studying the propagation dynamics in various types of CCNs, i.e., lattice, random, scale-free, small-world and multihop graphs, in a holistic manner. By combining Gibbs sampling with simulated annealing, we study the behavior of the above systems for various topological and malware related parameters with respect to the general random attacks considered. We demonstrate the effectiveness of the MRF framework in capturing the evolution of SIS malware propagation and use it to assess the robustness of synthetic and real CCNs with respect to the involved parameters. It is found that random networks are more robust, followed by scale-free, regular and small-world, while multihop emerge as the most vulnerable of all.
机译:如今,复杂通信网络(CCN)的激增及其在保持社会一致性方面的重要性已迫切要求保护网络基础架构免受恶意软件攻击的需求。在本文中,我们提出了一种基于马尔可夫随机场(MRF)的时空随机模型,用于对随机攻击下CCN的宏观行为进行建模,其中恶意威胁通过直接交互传播并遵循易感性感染易感性范例。我们利用MRF框架以整体方式分析研究各种类型的CCN中的传播动力学,即点阵图,随机图,无标度图,小世界图和多跳图。通过将Gibbs采样与模拟退火相结合,我们针对所考虑的一般随机攻击研究了上述系统针对各种拓扑和恶意软件相关参数的行为。我们展示了MRF框架在捕获SIS恶意软件传播的演变过程中的有效性,并使用它来评估合成CCN和实际CCN相对于所涉及参数的鲁棒性。发现随机网络更健壮,其次是无标度,常规和小型世界,而多跳则成为最脆弱的网络。

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