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A multi-level intrusion detection method for abnormal network behaviors

机译:网络异常行为的多级入侵检测方法

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Abnormal network traffic analysis has become an increasingly important research topic to protect computing infrastructures from intruders. Yet, it is challenging to accurately discover threats due to the high volume of network traffic. To have better knowledge about network intrusions, this paper focuses on designing a multi-level network detection method. Mainly, it is composed of three steps as (1) understanding hidden underlying patterns from network traffic data by creating reliable rules to identify network abnormality, (2) generating a predictive model to determine exact attack categories, and (3) integrating a visual analytics tool to conduct an interactive visual analysis and validate the identified intrusions with transparent reasons.
机译:异常的网络流量分析已成为保护计算机基础架构不受入侵者侵害的日益重要的研究课题。然而,由于大量网络流量,准确发现威胁是一项挑战。为了更好地了解网络入侵,本文着重设计一种多级网络检测方法。它主要由三个步骤组成:(1)通过创建可靠的规则来识别网络异常来从网络流量数据中了解隐藏的潜在模式;(2)生成预测模型以确定确切的攻击类别;以及(3)集成可视化分析进行交互式视觉分析的工具,并以透明的原因验证已识别的入侵。

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