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首页> 外文期刊>International journal of software science and computational intelligence >Multifractal Singularity Spectrum for Cognitive Cyber Defence in Internet Time Series
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Multifractal Singularity Spectrum for Cognitive Cyber Defence in Internet Time Series

机译:互联网时间序列中用于认知网络防御的多重分形奇异谱

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摘要

Growing global dependence over cyberspace has given rise to intelligent malicious threats due to increasing network complexities, inherent vulnerabilities embedded within the software and the limitations of existing cyber security systems to name a few. Malicious cyber actors exploit these vulnerabilities to carry out financial fraud, steal intellectual property and disrupt the delivery of essential online services. Unlike physical security, cyberspace is very difficult to secure due to the replacement of traditional computing platforms with sophisticated cloud computing and virtualization. These complex systems exhibit an increasing degree of complexity in tracking an attack or monitoring possible threats which is becoming intractable with the existing security firewalls and intrusion detection systems. In this paper, authors present a novel complexity detection technique using generalized multifractal singularity spectrum which is able to not only capture the growing complexity of the internet time series but also distinguishes the presence of an attack accurately.
机译:由于网络复杂性的提高,软件中嵌入的固有漏洞以及现有网络安全系统的局限性,全球对网络空间的依赖性日益增强,已经引发了智能恶意威胁。恶意网络参与者利用这些漏洞进行财务欺诈,窃取知识产权并破坏基本在线服务的提供。与物理安全不同,由于用复杂的云计算和虚拟化代替了传统的计算平台,因此网络空间很难获得保护。这些复杂的系统在跟踪攻击或监视可能的威胁方面显示出越来越高的复杂性,而这对于现有的安全防火墙和入侵检测系统而言已变得难以处理。在本文中,作者提出了一种使用广义多重分形奇异谱的新颖性复杂度检测技术,该技术不仅能够捕获不断增长的互联网时间序列的复杂性,而且能够准确地区分出攻击的存在。

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