A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks

To facilitate the allocation of energy and resources in the Internet of Things system, this paper presents a model for predicting user behavior in Internet of Things environments. The model is based on Bayesian learning and neural networks and is designed to provide insights into the future behavior...

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Main Authors: Xin Xu, Chengning Huang, Yuquan Zhu
Format: Article
Language:English
Published: Wiley 2024-01-01
Series:Journal of Computer Networks and Communications
Online Access:http://dx.doi.org/10.1155/2024/6007587
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author Xin Xu
Chengning Huang
Yuquan Zhu
author_facet Xin Xu
Chengning Huang
Yuquan Zhu
author_sort Xin Xu
collection DOAJ
description To facilitate the allocation of energy and resources in the Internet of Things system, this paper presents a model for predicting user behavior in Internet of Things environments. The model is based on Bayesian learning and neural networks and is designed to provide insights into the future behavior of users, allowing for the allocation of resources in advance. In this paper, the data are preprocessed by data merging and format processing, and then the association rules are mined by association rules analysis. Finally, the data are utilized to train the behavioral prediction model of the short-duration memory network via Bayesian optimization. The experimental results showed that the average running time of the research model was 1.682 s, the average accuracy was 96.77%, the average root-mean-square error was 0.382, and the average absolute error was 0.315. The designed behavior prediction model is capable of effectively predicting the user behavior of the Internet of Things, thereby enabling the reasonable allocation of energy and resources in the Internet of Things system.
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institution OA Journals
issn 2090-715X
language English
publishDate 2024-01-01
publisher Wiley
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series Journal of Computer Networks and Communications
spelling doaj-art-0dcc6529263f4d39b197191fec60130c2025-08-20T02:02:25ZengWileyJournal of Computer Networks and Communications2090-715X2024-01-01202410.1155/2024/6007587A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural NetworksXin Xu0Chengning Huang1Yuquan Zhu2School of Computer and Communication EngineeringSchool of Computer and Communication EngineeringSchool of Computer Science and Communication EngineeringTo facilitate the allocation of energy and resources in the Internet of Things system, this paper presents a model for predicting user behavior in Internet of Things environments. The model is based on Bayesian learning and neural networks and is designed to provide insights into the future behavior of users, allowing for the allocation of resources in advance. In this paper, the data are preprocessed by data merging and format processing, and then the association rules are mined by association rules analysis. Finally, the data are utilized to train the behavioral prediction model of the short-duration memory network via Bayesian optimization. The experimental results showed that the average running time of the research model was 1.682 s, the average accuracy was 96.77%, the average root-mean-square error was 0.382, and the average absolute error was 0.315. The designed behavior prediction model is capable of effectively predicting the user behavior of the Internet of Things, thereby enabling the reasonable allocation of energy and resources in the Internet of Things system.http://dx.doi.org/10.1155/2024/6007587
spellingShingle Xin Xu
Chengning Huang
Yuquan Zhu
A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks
Journal of Computer Networks and Communications
title A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks
title_full A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks
title_fullStr A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks
title_full_unstemmed A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks
title_short A Model for Predicting IoT User Behavior Based on Bayesian Learning and Neural Networks
title_sort model for predicting iot user behavior based on bayesian learning and neural networks
url http://dx.doi.org/10.1155/2024/6007587
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