IoTProtect:基于机器学习的物联网入侵检测系统

M. Alani
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引用次数: 2

摘要

物联网在各种日常应用中的应用迅速增长,加上缺乏适当的补丁和安全措施,使得物联网很容易成为恶意行为者的目标。随着我们注意到世界各地越来越多地利用物联网设备进行安全攻击,研究需要跟上并保护物联网设备。在本文中,我们提出了物联网保护;利用TON_IoT数据集进行训练和测试的基于机器学习的入侵检测系统。测试结果表明,该系统的检测准确率为99.999%,假阳性率为0.001%,假阴性率为0%,具有良好的定时性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
IoTProtect: A Machine-Learning Based IoT Intrusion Detection System
The rapid growth in IoT adoption in various daily-life applications, combined with the lack of proper patching and securing, has made IoT an easy target for malicious actors. As we notice the increase in the utilization of IoT devices in conducting security attacks around the world, research needs to catch up and protect IoT devices.In this paper, we present IoTProtect; a machine-learning based intrusion detection system utilizing the TON_IoT dataset in training and testing. Testing the proposed system showed 99.999% detection accuracy with 0.001% false-positive, and 0% false-negative with excellent timing performance.
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