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首页> 外文期刊>IEEE transactions on mobile computing >Optimal Distributed Malware Defense in Mobile Networks with Heterogeneous Devices
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Optimal Distributed Malware Defense in Mobile Networks with Heterogeneous Devices

机译:具有异构设备的移动网络中的最佳分布式恶意软件防御

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As malware attacks become more frequently in mobile networks, deploying an efficient defense system to protect against infection and to help the infected nodes to recover is important to prevent serious spreading and outbreaks. The technical challenges are that mobile devices are heterogeneous in terms of operating systems, the malware infects the targeted system in any opportunistic fashion via local and global connectivity, while the to-be-deployed defense system on the other hand would be usually resource limited. In this paper, we investigate the problem of how to optimally distribute the content-based signatures of malware, which helps to detect the corresponding malware and disable further propagation, to minimize the number of infected nodes. We model the defense system with realistic assumptions addressing all the above challenges that have not been addressed in previous analytical work. Based on the framework of optimizing the system welfare utility, which is the weighted summation of individual utility depending on the final number of infected nodes through the signature allocation, we propose an encounter-based distributed algorithm based on Metropolis sampler. Through theoretical analysis and simulations with both synthetic and realistic mobility traces, we show that the distributed algorithm achieves the optimal solution, and performs efficiently in realistic environments.
机译:随着移动网络中恶意软件攻击的日益频繁,部署有效的防御系统来防止感染并帮助受感染的节点恢复对于防止严重的传播和爆发非常重要。技术挑战是,移动设备在操作系统方面是异构的,恶意软件通过本地和全局连接以任何机会方式感染目标系统,而另一方面,要部署的防御系统通常将受到资源限制。在本文中,我们研究了如何优化分配基于恶意软件的基于内容的特征码的问题,这有助于检测相应的恶意软件并禁止进一步传播,以最大程度地减少感染节点的数量。我们以现实的假设为防御系统建模,以解决先前分析工作中未解决的所有上述挑战。在优化系统福利效用的框架下,即通过签名分配根据感染节点的最终数量对各个效用进行加权求和,我们提出了一种基于Metropolis采样器的基于遭遇的分布式算法。通过理论分析和模拟,并结合了合成的和实际的流动性轨迹,我们表明该分布式算法可实现最佳解决方案,并在现实环境中高效执行。

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