使用Naìve贝叶斯分类器进行DDoS检测的网络建模的系统方法

R. Vijayasarathy, S. Raghavan, Balaraman Ravindran
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引用次数: 46

摘要

拒绝服务(DoS)攻击对任何电子社会都构成了巨大的威胁。DoS和DDoS攻击是灾难性的,特别是当应用于高度敏感的目标,如关键信息基础设施。虽然研究文献集中于使用各种基本分类器模型来检测攻击,但在文献中观察到的共同趋势是将DoS攻击分类为广泛的入侵类别,这使得针对此类攻击的解决方案在实际中不现实。在这项工作中,描述了使用Naìve贝叶斯(NB)分类器来检测DoS攻击的精心设计的实际实现系统的方法。这项工作包括TCP和UDP两种协议的网络建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A system approach to network modeling for DDoS detection using a Naìve Bayesian classifier
Denial of Service(DoS) attacks pose a big threat to any electronic society. DoS and DDoS attacks are catastrophic particularly when applied to highly sensitive targets like Critical Information Infrastructure. While research literature has focussed on using various fundamental classifier models for detecting attacks, the common trend observed in literature is to classify DoS attacks into the broad class of intrusions, which makes proposed solutions to this class of attacks unrealistic in practical terms. In this work, the approach to a carefully engineered, practically realised system to detect DoS attacks using a Naìve Bayesian(NB) classifier is described. The work includes network modeling for two protocols - TCP and UDP.
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