基于危险理论的无线传感器网络入侵检测模型

Linlin Li, Liangxu Sun, G. Wang
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引用次数: 4

摘要

针对无线传感器网络中的入侵检测问题,提出了一种基于危险理论的入侵检测模型,取代了传统的自-非自理论。入侵检测模型采用多节点协作机制,具有危险感知和控制决策两层结构。感知节点采用投影追踪算法实现危险感知,决策节点采用极限学习机算法实现入侵细节检测。其层与层之间的逻辑过程符合危险理论。该模型采用Beta分布信任评估方法实现节点间的数据信任。通过MATLAB仿真,所提出的入侵检测模型在分类训练、危险感知、误报率、误报率、能耗等方面总体上优于SNS模型。
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An Intrusion Detection Model Based On Danger Theory for Wireless Sensor Networks
This paper, due to the intrusion detection problem in Wireless Sensor Networks, proposes an intrusion detection model based on the Danger Theory instead of the traditional Self-NonSelf theory. The intrusion detection model has two layers structure including danger perception and control decision, and it uses a multi-node cooperation mechanism. The perception node can realize the danger perception with Projection Pursuit Algorithm, and the decision node can detect the intrusion in detail with Extreme Learning Machine Algorithm. The logic process between their layers is consistent with the Danger Theory. The proposed model can realize the data trust between nodes with the Beta distribution trust evaluation method. By the simulations in the MATLAB, the proposed intrusion detection model on the whole is better than the SNS model at the aspects including classification training, danger perception, false negative rate, false positive rate and energy consumption.
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