基于网络异常的入侵检测系统中机器学习与深度学习的比较研究

M. S. Abdel-Wahab, A. M. Neil, Ayman Atia
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引用次数: 1

摘要

本文对基于异常的网络入侵检测系统中使用的机器学习和深度学习模型进行了比较研究。本文概述了以前在ML和DL IDS领域所做的工作,然后概述了综述文献中使用的数据集。此外,在KDD-99数据集上对ML和DL模型进行了测试,并给出了性能结果,进行了比较和讨论。最后,作者提出了未来研究的关键领域。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Comparative Study of Machine Learning and Deep Learning in Network Anomaly-Based Intrusion Detection Systems
This paper presents a comparative study of Machine learning and Deep learning models used in anomaly-based network intrusion detection systems. The paper has presented an overview of the previous work done in the field of ML and DL IDS, then an overview of the used datasets in reviewed literature was presented. Moreover, ML and DL models were tested on the KDD-99 dataset, and performance results were presented, compared, and discussed. Finally, areas of future research of critical importance are proposed by the authors.
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