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A Novel Intrusion Detection Method for WSN

机译:一种新型WSN入侵检测方法

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摘要

Wireless sensor network (WSN), which combines the technology of sensor, embedded system and wireless communications, has become increasingly popular and important in our lives. Security is an important issue for WSN. In this paper, we propose a novel method to detect the attacks in WSN. Our method composes of two important stages: offline training and online testing. In the offline training stage, we collect enough training samples, extract the features and then train the models. In the online testing stage, we extract the features of the captured network packets and compare them with the trained models. The hierarchical system could dramatically reduce the amount of online training without sacrificing the detecting accuracy. We deploy the proposed approach in a wireless sensor network for forest monitoring to evaluate its performance. The experiments show that our method performs better compared to the traditional methods.
机译:无线传感器网络(WSN)结合了传感器,嵌入式系统和无线通信技术,在我们的生活中越来越受欢迎和重要。安全性是WSN的重要问题。在本文中,我们提出了一种新颖的方法来检测WSN中的攻击。我们的方法组成了两个重要阶段:离线培训和在线测试。在离线培训阶段,我们收集足够的训练样本,提取功能,然后培训模型。在在线测试阶段,我们提取捕获的网络数据包的功能,并将它们与培训的型号进行比较。分层系统可以大大减少在线培训的数量,而不会牺牲检测精度。我们在无线传感器网络中部署所提出的方法进行森林监控,以评估其性能。实验表明,与传统方法相比,我们的方法更好地执行。

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