Sensor Network Security Risk Prediction and Control Method Based on Big Data Analysis

Author:

Yuan Bingxia1ORCID

Affiliation:

1. Network and Information Center, Huizhou University, Huizhou, Guangdong 516007, China

Abstract

The security prediction and control program of sensor network based on big data analysis is studied. First of all, in view of the shortcomings of existing security measures, this paper regards security standards as a challenge. Based on the changes of network security before and after the attack, the concept of “network security line” is proposed to select and simplify the security measures that can meet the needs and affect the real security and monitor the counting process of the network. Then, for counterattack, several models of topology security measurement based on stochastic process are developed to check the topology security. Finally, the experimental design of the risk assessment method is found by creating a risk receiving data model, deleting data features, and recreating distributed data. Experimental results show that the efficiency of this method is above 90% when the estimated distance is 10–40 m. The working power is 196∼461 Hz, lower than the normal standard. The time delay is less than 0.3 s, and the real-time performance is better than ordinary models. The relative error is less than 3%, and the accuracy is higher.

Publisher

Hindawi Limited

Subject

Computer Networks and Communications,Information Systems

Reference25 articles.

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1. Retracted: Sensor Network Security Risk Prediction and Control Method Based on Big Data Analysis;Security and Communication Networks;2023-12-06

2. Task based Approach for Smart Secure Data Transmission using TinyOS RTOS;2023 International Conference on Recent Advances in Electrical, Electronics, Ubiquitous Communication, and Computational Intelligence (RAEEUCCI);2023-04-19

3. Analyzing Optical Fibre Communication Networks for Intrusion Detection Using FBG Sensors;2022 International Symposium on Multidisciplinary Studies and Innovative Technologies (ISMSIT);2022-10-20

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