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An intelligent intrusion detection system

机译:智能入侵检测系统

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摘要

With the introduction of emerging technologies cybersecurity has become an inherited and amplified problem. New technologies bring significant developments but also come with new challenges in the cybersecurity area. The fight against malicious attacks is an everyday battle for every company. Challenges brought by security breaches can be devastating for a company and sometimes bring un-survivable circumstances. In this paper, we propose a novel two-stage intelligent intrusion detection system (IDS) to detect and protect from such malicious attacks. Intrusion Detection Systems are feasible solutions for cybersecurity problems, but they come with implementation challenges. Anomaly based IDS usually have a high rate of false positives (FP) and they require considerable computational requirements. The approach proposed in this paper consists of a two-stage architecture based on machine learning algorithms. In the first stage, the IDS uses K-Means to detect attacks and the second stage uses supervised learning to classify such attacks and eliminate the number of false positives. The implementation of this approach results in a computationally efficient IDS able to detect and classify attacks at a 99.97% accuracy while lowering the number of false positives to 0. The paper also evaluates the performance results and compares them with other relevant research papers. The performance of this proposed IDS is superior to the current state of the art.
机译:随着新兴技术的引入,网络安全已成为一种遗传和放大的问题。新技术带来了重大发展,但网络安全地区也具有新的挑战。反对恶意攻击的斗争是每个公司的日常战斗。安全漏洞所带来的挑战可能为公司造成毁灭性,有时会带来不可生存的情况。在本文中,我们提出了一种新颖的两级智能入侵检测系统(IDS)来检测和保护这种恶意攻击。入侵检测系统是网络安全问题的可行解决方案,但它们具有实施挑战。基于异常的IDS通常具有高频率的误报(FP),它们需要相当大的计算要求。本文提出的方法包括基于机器学习算法的两级架构。在第一阶段,IDS使用K-Means来检测攻击,第二阶段使用监督学习来分类这些攻击并消除误报的数量。这种方法的实现导致计算有效的ID,能够以99.97%的精度检测和分类攻击,同时将误报的数量降低到0.本文还评估了性能结果并将其与其他相关的研究论文进行了比较。该提议的IDS的性能优于最新的现有技术。

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