针对多元网络安全攻击的集成可视化分析方法

Taewoong Kwon, Iksoo Shin, Kyuil Kim, Jungsuk Song, Jun Lee
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引用次数: 0

摘要

随着安全威胁在全球范围内的迅速蔓延,对网络流量进行全天候监控和防范异常攻击变得至关重要。尽管使用了各种安全设备(如网络入侵检测系统,NIDS)来保证坚实的网络安全,但由于未知威胁的复杂模式,它仍然依赖于人类。本研究介绍了一个图形交互系统来表示和理解多元网络安全攻击。特别是,该界面结合基于机器学习的可疑流量分析增强了直观判断
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrated Visual Analytics Approach against Multivariate Cybersecurity Attack
As security threats rapidly spread all over the world, it is critical that network traffic is monitored and protected from abnormal attacks during 24/7. Even though various security devices (Rep., network intrusion detection system, NIDS) had utilized to guarantee a solid network security, it still depends on human being due to complex patterns from unknown threats. This study introduces a graphical interactive system for representing and understanding multivariate cybersecurity attacks. In particular, the interface enhances intuitive judgments combined with machine learning-based analysis of suspicious traffic
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