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Netflow-Based Malware Detection and Data Visualisation System

机译:基于Netflow的恶意软件检测和数据可视化系统

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摘要

This paper presents a system for network traffic visualisation and anomalies detection by means of data mining and machine learning techniques. First, this work describes and analyses existing solutions in the field of network anomalies detection in order to identify adapted techniques in that area. Afterwards, the system architecture and the adapted tools and libraries are presented. Particularly, two different anomalies detection methods are proposed. The key experiments and analysis focus on performance evaluation of the proposed algorithms. In particular, different setups are considered in order to evaluate such aspects as detection effectiveness and computational complexity. The obtained results are promising and show that the proposed system can be considered as a useful tool for the network administrator.
机译:本文提出了一种通过数据挖掘和机器学习技术进行网络流量可视化和异常检测的系统。首先,这项工作描述并分析了网络异常检测领域中的现有解决方案,以便确定该领域的适用技术。随后,介绍了系统架构以及经过修改的工具和库。特别地,提出了两种不同的异常检测方法。关键实验和分析集中于所提出算法的性能评估。特别地,考虑不同的设置以便评估诸如检测有效性和计算复杂度之类的方面。获得的结果是有希望的,并且表明所提出的系统可以被认为是网络管理员的有用工具。

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