基于主成分分析算法和决策树分类器的网络入侵检测系统

Oyeyemi Osho, Sungbum Hong, T. Kwembe
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引用次数: 1

摘要

网络入侵检测系统(IDS, Network Intrusion Detection system)已成为保障网络安全的一种手段,可以确保所有连接设备的安全。网络入侵检测系统(IDS)是指快速观察网络数据信息,发现任何入侵模式,防止异常入侵对网络造成危害的系统。为了解决这个问题,我们在这篇概念论文中提出了一种基于主成分分析(PCA)和决策树分类器算法的IDS,这是一种监督机器学习模型,用于检测网络中的入侵。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Network Intrusion Detection System Using Principal Component Analysis Algorithm and Decision Tree Classifier
Network Intrusion Detection Systems (IDS) have become expedient for network security and ensures the safety of all connected devices. Network Intrusion Detection System (IDS) alludes to observing network data information swiftly, detecting any intrusion pattern and preventing any harmful effect of anomaly intrusion that will cost the network. To combat this issue, we present in this concept paper an IDS based on the Principal Component Analysis (PCA) and Decision Tree Classifier algorithm, a supervised machine learning model to detect intrusion in the Network.
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