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Content Recommendation Algorithm for Intelligent Navigator in Fog Computing Based IoT Environmentopen access

Authors
Lin, FuhongZhou, YutongYou, IlsunLin, JiuzhiAn, XingshuoLu, Xing
Issue Date
2019
Publisher
Institute of Electrical and Electronics Engineers Inc.
Keywords
Content recommendation; association rules; Internet of Vehicles; fog computing
Citation
IEEE Access, v.7, pp 53677 - 53686
Pages
10
Journal Title
IEEE Access
Volume
7
Start Page
53677
End Page
53686
URI
https://scholarworks.bwise.kr/sch/handle/2021.sw.sch/5336
DOI
10.1109/ACCESS.2019.2912897
ISSN
2169-3536
Abstract
With the development of the Internet and mobile technologies, the Internet of Things (IoT) era has arrived. Vehicle networking technology can not only facilitate people's travel but also effectively alleviate traffic congestion. The development of fog computing technology provides unlimited possibilities for the Internet of Vehicles (IoV). Intelligent navigator is a very important part of human-computer interaction in IoV. It carries a large number of tasks of recommending content for users. In order to get more accurate recommendation content, we propose a weighted interest degree recommendation algorithm using association rules for intelligence in the IoV. First, the user data are analyzed to establish the association rule mining algorithm. Second, the user interest score is predicted by analyzing the relevance between user interests to recommend personalized service for the user. From the simulation results, we can see that the proposed algorithm can achieve higher recommendation accuracy.
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