AutoIoT: Automatically Updated IoT Device Identification With Semi-Supervised Learning

计算机科学 鉴定(生物学) 物联网 人工智能 多媒体 机器学习 万维网 植物 生物
作者
Linna Fan,Lin He,Yichao Wu,Shize Zhang,Zhiliang Wang,Jia Li,Jiahai Yang,Chaocan Xiang,Xiaoqian Ma
出处
期刊:IEEE Transactions on Mobile Computing [Institute of Electrical and Electronics Engineers]
卷期号:22 (10): 5769-5786 被引量:9
标识
DOI:10.1109/tmc.2022.3183118
摘要

IoT devices bring great convenience to a person's life and industrial production. However, their rapid proliferation also troubles device management and network security. Network administrators usually need to know how many IoT devices are in the network and whether they behave normally. IoT device identification is the first step to achieving these goals. Previous IoT device identification methods reach high accuracy in a closed environment. But they are not applicable in the continuously changing environment. When new types of devices are plugged in, they cannot update themselves automatically. Besides, they usually rely on supervised learning and need lots of labeled data, which is costly. To solve these problems, we propose a novel IoT device identification model named AutoIoT , updating itself automatically when new types of devices are plugged in. Besides, it only needs a few labeled data and identifies IoT devices with high accuracy. The evaluation on two public datasets shows that AutoIoT can identify new device types only using 1.5 $\sim$ 2.5 hours' traffic and still have high accuracy after updating. Moreover, it has a better performance than other works when there are only a few labeled data, especially in an environment with scanning traffic.

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