Chung-Ho Wang’s research while affiliated with National University of Defense Technology and other places

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Publications (1)


Flowchart of the proposed approach.
EWMA control chart constructed using Minitab.
Monitoring DoS classification using EWMA control chart.
Monitoring probe classification using the EWMA control chart.
Monitoring U2R classification using the EWMA control chart.

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Using WPCA and EWMA Control Chart to Construct a Network Intrusion Detection Model
  • Article
  • Full-text available

July 2024

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34 Reads

Ying-Ti Tsai

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Chung-Ho Wang

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Yung-Chia Chang

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Lee-Ing Tong

Artificial intelligence algorithms and big data analysis methods are commonly employed in network intrusion detection systems. However, challenges such as unbalanced data and unknown network intrusion modes can influence the effectiveness of these methods. Moreover, the information personnel of most enterprises lack specialized knowledge of information security. Thus, a simple and effective model for detecting abnormal behaviors may be more practical for information personnel than attempting to identify network intrusion modes. This study develops a network intrusion detection model by integrating weighted principal component analysis into an exponentially weighted moving average control chart. The proposed method assists information personnel in easily determining whether a network intrusion event has occurred. The effectiveness of the proposed method was validated using simulated examples.

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