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Intrusion detection for IEEE 802.11 based industrial automation using possibilistic anomaly detection

机译:使用可能的异常检测对基于IEEE 802.11的工业自动化进行入侵检测

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Industrial automation is undergoing an increased use of wireless networks due to high flexibility and ease of deployment. However, despite the benefits, wireless networks have their inherent problems and vulnerabilities. This paper investigates the feasibility of using anomaly detection using possibility theory for network traffic. This is then used as a lightweight hostbased intrusion detection system for single board computer or embedded devices of an IEEE 802.11 based wireless industrial automation network. Traffic data is collected for genuine browsing and simulated attacks. It is then subjected to cluster analysis and tested using standard classifiers. The logarithmic histogram of the interpacket delay is used as the feature for classification. Subsequently it is used for training and testing a possiblisitic anomaly detector. The performance is then compared with a statistical outlier detector.
机译:由于高度的灵活性和易于部署,工业自动化正在越来越多地使用无线网络。但是,尽管有这些好处,无线网络仍具有其固有的问题和漏洞。本文研究了使用可能性理论对网络流量进行异常检测的可行性。然后,将其用作基于IEEE 802.11无线工业自动化网络的单板计算机或嵌入式设备的基于主机的轻量级入侵检测系统。收集流量数据以进行真正的浏览和模拟攻击。然后对其进行聚类分析,并使用标准分类器进行测试。分组间延迟的对数直方图用作分类的特征。随后,它将用于训练和测试可能的异常检测器。然后将性能与统计异常值检测器进行比较。

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