A Timeliness-Enhanced Traffic Identification Method in Airborne Network

Author:

Lyu Na,Zhou Jiaxin,Feng Xuan,Chen Kefan,Chen Wu

Abstract

High dynamic topology and limited bandwidth of the airborne network make it difficult to provide reliable information interaction services for diverse combat mission of aviation swarm operations. Therefore, it is necessary to identify the elephant flows in the network in real time to optimize the process of traffic control and improve the performance of airborne network. Aiming at this problem, a timeliness-enhanced traffic identification method based on machine learning Bayesian network model is proposed. Firstly, the data flow training subset is obtained by preprocessing the original traffic dataset, and the sub-classifier is constructed based on Bayesian network model. Then, the multi-window dynamic Bayesian network classifier model is designed to enable the early identification of elephant flow. The simulation results show that compared with the existing elephant flow identification method, the proposed method can effectively improve the timeliness of identification under the condition of ensuring the accuracy of identification.

Publisher

EDP Sciences

Subject

General Engineering

Reference16 articles.

1. Huo Dajun. Operation of Network Swarm[M]. Beijing: National Defence University Press, 2013 (in Chinese)

2. Zhao Shanghong, Chen Kefan, Lyu Na, et al. Software Defined Airborne Tactical Network for Aeronautic Swarm[J]. Journal on Communications, 2017(8): 140–155 [Article]

3. New directions in traffic measurement and accounting

4. Mori T, Uchida M, Kawahara R, et al. Identifying Elephant Flows through Periodically Sampled Packets[C]//The Institute of Electronics, Information and Communication Engineers, 2004

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Research on the identification of network traffic anomalies in the access layer of power IoT based on extreme learning machine;2022 International Conference on Artificial Intelligence, Information Processing and Cloud Computing (AIIPCC);2022-08

2. Regression Based Dynamic Elephant Flow Detection in Airborne Network;IEEE Access;2020

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