A Traffic-Classification Method Using the Correlation of the Network Flow 


Vol. 44,  No. 4, pp. 433-438, Apr.  2017


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  Abstract

Presently, the ubiquitous emergence of high-speed-network environments has led to a rapid increase of various applications, leading to constantly complicated network traffic. To manage networks efficiently, the traffic classification of specific units is essential. While various traffic-classification methods have been studied, a methods for the complete classification of network traffic has not yet been developed. In this paper, a correlation model of the network flow is defined, and a traffic-classification method for which this model is used is proposed. The proposed network-correlation model for traffic classification consists of a similarity model and a connectivity model. Suggestion for the effectiveness of the proposed method is demonstrated in terms of accuracy and completeness through experiments.


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  Cite this article

[IEEE Style]

Y. Goo, K. Shim, S. Lee, B. D. Sija, M. Kim, "A Traffic-Classification Method Using the Correlation of the Network Flow," Journal of KIISE, JOK, vol. 44, no. 4, pp. 433-438, 2017. DOI: .


[ACM Style]

YoungHoon Goo, Kyuseok Shim, Sungho Lee, Baraka D. Sija, and MyungSup Kim. 2017. A Traffic-Classification Method Using the Correlation of the Network Flow. Journal of KIISE, JOK, 44, 4, (2017), 433-438. DOI: .


[KCI Style]

구영훈, 심규석, 이성호, Baraka D. Sija, 김명섭, "네트워크 플로우의 연관성 모델을 이용한 트래픽 분류 방법," 한국정보과학회 논문지, 제44권, 제4호, 433~438쪽, 2017. DOI: .


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