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Evolving Smart URL Filter in a Zone-Based Policy Firewall for Detecting Algorithmically Generated Malicious Domains

机译:在基于区域的策略防火墙中不断发展的智能URL过滤器,用于检测算法生成的恶意域

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Domain Generation Algorithm (DGA) has evolved as one of the most dangerous and "undetectable" digital security deception methods. The complexity of this approach (combined with the intricate function of the fast-flux "botnet" networks) is the cause of an extremely risky threat which is hard to trace. In most of the cases it should be faced as zero-day vulnerability. This kind of combined attacks is responsible for malware distribution and for the infection of Information Systems. Moreover it is related to illegal actions, like money mule recruitment sites, phishing websites, illicit online pharmacies, extreme or illegal adult content sites, malicious browser exploit sites and web traps for distributing virus. Traditional digital security mechanisms face such vulnerabilities in a conventional manner, they create often false alarms and they fail to forecast them. This paper proposes an innovative fast and accurate evolving Smart URL Filter (eSURLF) in a Zone-based Policy Firewall (ZFW) which uses evolving Spiking Neural Networks (eSNN) for detecting algorithmically generated malicious domains names.
机译:域生成算法(DGA)已经发展为最危险和“未检测的”数字安全欺骗方法之一。这种方法的复杂性(结合快速通量“僵尸网络”网络的复杂功能)是极其危险的威胁的原因,这是难以追踪的。在大多数情况下,它应该面临零天脆弱性。这种组合攻击负责恶意软件分发和信息系统的感染。此外,它与非法行动有关,如金钱骡子招聘网站,网络钓鱼网站,非法在线药店,极端或非法成人内容网站,恶意浏览器利用网站和用于分发病毒的网陷阱。传统的数字安全机制以常规方式面临此类漏洞,它们常规创造误报,并且他们无法预测它们。本文在基于区域的策略防火墙(ZFW)中提出了一种创新的快速和准确的智能URL过滤器(ESURLF),它使用不断发展的尖刺神经网络(ESNN)来检测算法生成的恶意域名。

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