Machine Learning-Based Stealing Attack of the Temperature Monitoring System for the Energy Internet of Things

Author:

Li Qiong1,Zhang Liqiang2,Zhou Rui2,Xia Yaowen1,Gao Wenfeng1ORCID,Tai Yonghang2ORCID

Affiliation:

1. Solar Energy Research Institute, Yunnan Normal University, Kunming, Yunnan 650500, China

2. Yunnan Key Laboratory of Opto-electronic Information Technology, Yunnan Normal University, Kunming 650000, China

Abstract

With the development of the Energy Internet of Things (EIoT), it is of great practical significance to study the security strategy and intelligent control system for solar thermal utilization system to optimize the operation efficiency and carry out intelligent dynamic adjustment. For buildings integrated with solar water heating systems, computational fluid dynamics simulation was used in analyzing the process of solar energy output. A method based on machine learning is proposed to predict energy conversion. Besides, the simulation and analysis are carried out in combination with the possible safety problems such as the vibration of the control system. This paper proposed a novel platform of EIoT for machine learning-based cybersecurity study and implemented the platform for the temperature monitoring system. After the evaluation of the machine learning-based cybersecurity study, the EIoT system demonstrated a high performance with the Extreme Gradient Boosting (XGBoost) training algorithm.

Funder

National Natural Science Foundation of China

Publisher

Hindawi Limited

Subject

Computer Networks and Communications,Information Systems

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