A Knowledge-Based Approach to Intrusion Detection Modeling

Sumit More, Mary Matthews, A. Joshi, Timothy W. Finin
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引用次数: 88

Abstract

Current state of the art intrusion detection and prevention systems (IDPS) are signature-based systems that detect threats and vulnerabilities by cross-referencing the threat or vulnerability signatures in their databases. These systems are incapable of taking advantage of heterogeneous data sources for analysis of system activities for threat detection. This work presents a situation-aware intrusion detection model that integrates these heterogeneous data sources and build a semantically rich knowledge-base to detect cyber threats/vulnerabilities.
基于知识的入侵检测建模方法
目前最先进的入侵检测和防御系统(IDPS)是基于签名的系统,通过交叉引用数据库中的威胁或漏洞签名来检测威胁和漏洞。这些系统无法利用异构数据源分析系统活动以进行威胁检测。本文提出了一种态势感知入侵检测模型,该模型集成了这些异构数据源,并构建了一个语义丰富的知识库来检测网络威胁/漏洞。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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