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LIFELONG LEARNING BASED INTELLIGENT, DIVERSE, AGILE, AND ROBUST SYSTEM FOR NETWORK ATTACK DETECTION

机译:基于终身学习的智能,多样,敏捷和网络攻击检测的强大系统

摘要

A lifelong learning intrusion detection system and methods are provided. The system may capture network data directed to a host node. The host node may include a honeypot. The honeypot may emulate operation of a physical or virtual device to attract malicious activity. The system may classify, based on a supervised machine learning model, the network data as being not malicious or not malicious. The system may classify, based on an unsupervised machine learning model, the network data as being anomalous or not anomalous. The system may alter operation of the honeypot to induce malicious activity. The system may determine, after operation of the honeypot is altered, the honeypot is accessed. The system may retrain the supervised machine learning model and/or unsupervised machine learning model based the network data.
机译:提供了终身学习入侵检测系统和方法。系统可以捕获针对主节点的网络数据。主机节点可以包括蜜罐。蜜罐可以模拟物理或虚拟设备的操作以吸引恶意活动。系统可以基于监督机器学习模型来分类,网络数据不是恶意或不恶意。系统可以基于无监督的机器学习模型来分类,网络数据是异常或不异常的。该系统可以改变蜜罐的操作以诱导恶意活动。系统可以确定在改变蜜罐的操作之后,访问蜜罐。系统可以基于网络数据恢复监督机器学习模型和/或无监督的机器学习模型。

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